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Institute
- Julius-von-Sachs-Institut für Biowissenschaften (373) (remove)
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Maintaining the balance between CO2 uptake and transpiration is important for plants and depends on tightly controlled turgor changes caused by the activity of various anion and cation channels. These channels are part of signaling cascades triggered, for example, by phytohormones such as ABA (abscisic acid) and JA (jasmonate), both of which act during drought stress in guard cells. In addition, JA is known to be involved in the plant's response to pathogen attack or wounding.
GORK (guard cell outward rectifying K+ channel) is the only known outward rectifying K+ channel in guard cells and therefore responsible for K+ efflux during stomatal closure.
In the course of this work it could be demonstrated by stomatal aperture assays, that GORK is an essential part of JA-induced stomatal closure. This is true for both triggers, leaf wounding as well as direct MeJA (methyl jasmonate) application. Patch clamp experiments on guard cell protoplasts backed this finding by revealing GORK K+ outward currents as a target of JA signaling in guard cells. As cytosolic Ca2+ signals are known to be involved in both ABA as well as JA signaling, the interaction of GORK with Ca2+-dependent kinases was examined consequently. An antagonistic regulation of GORK by
CIPK5-CBL1/9 complexes and ABI2 was identified by DEVC (double electrode voltage clamp) and protein-protein interaction experiments and backed up by in vitro kinase assays. Patch-clamp recordings on guard cell protoplasts of cipk5-2 kinase loss-of-function mutant revealed the importance of CIPK5 for JA-triggered stomatal closure via activation of GORK. The interaction of different CDPKs (Ca2+-dependent protein kinases) with GORK was also investigated.
Besides Ca2+ signaling also ROS (reactive oxygen species) production is essential in ABA and MeJA signaling. In DEVC experiments a reversible effect of ROS on GORK channel activity could be demonstrated, which could be one piece in the explanation of those ROS effects in ABA and MeJA signaling.
The slowly activating vacuolar SV/TPC1 channel is ubiquitously expressed in plants and provides a large cation conductance in the vacuolar membrane. Thereby, monovalent (K+, Na+) and in principle also divalent cations, such as Ca2+, can pass through the channel. The SV/TPC1 channel is activated upon membrane depolarization and cytosolic Ca2+ but inhibited by luminal calcium. With respect to the latter, two luminal Ca2+ binding sites (site 1 Asp240/Asp454/Glu528, site 2 Glu239/Asp240/Glu457) were identified to coordinate luminal Ca2+. In this work, the characteristics of the SV/TPC1 channels in terms of regulation and function were further elucidated, focusing on the TPC1s of Arabidopsis thaliana and Vicia faba. For electrophysiological analysis of the role of distinct pore residues for channel gating and luminal Ca2+ sensing, TPC1 channel variants were generated by site-directed mutagenesis and transiently expressed as eGFP/eYFP-fusion constructs in Arabidopsis thaliana mesophyll protoplasts of the TPC1 loss-of-function mutant attpc1-2.
1. As visualized by confocal fluorescence laser-scanning microscopy, all AtTPC1 (WT, E605A/Q, D606N, D607N, E605A/D606N, E605Q/D606N/D607N, E457N/E605A/D606N) and VfTPC1 channel variants (WT, N458E/A607E/ N608D) were correctly targeted to the vacuole membrane.
2. Patch-clamp studies revealed that removal of one of the negative charges at position Glu605 or Asp606 was already sufficient to promote voltage-dependent channel activation with higher voltage sensitivity. The combined neutralization of these residues (E605A/D606N), however, was required to additionally reduce the luminal Ca2+ sensitivity of the AtTPC1 channel, leading to hyperactive AtTPC1 channels. Thus, the residues Glu605/Asp606 are functionally coupled with the voltage sensor of AtTPC1 channel, thereby modulating channel gating, and form a novel luminal Ca2+ sensing site 3 in AtTPC1 at the luminal entrance of the ion transport pathway.
3. Interestingly, this novel luminal Ca2+ sensing site 3 (Glu605/Asp606) and Glu457 from the luminal Ca2+ sensing site 2 of the luminal Ca2+-sensitive AtTPC1 channel were neutralized by either asparagine or alanine in the TPC1 channel from Vicia faba and many other Fabaceae. Moreover, the VfTPC1 was validated to be a hyperactive TPC1 channel with higher tolerance to luminal Ca2+ loads which was in contrast to the AtTPC1 channel features. As a result, VfTPC1 but not AtTPC1 conferred the hyperexcitability of vacuoles. When AtTPC1 was mutated for the three VfTPC1-homologous polymorphic site residues, the AtTPC1 triple mutant (E457N/E605A/D606N) gained VfTPC1-like characteristics. However, when VfTPC1 was mutated for the three AtTPC1-homologous polymorphic site residues, the VfTPC1 triple mutant (N458E/A607E/N608D) still sustained VfTPC1-WT-like features. These findings indicate that the hyperactivity of VfTPC1 is achieved in part by the loss of negatively charged amino acids at positions that - as part of the luminal Ca2+ sensing sites 2 and 3 – are homologous to AtTPC1-Glu457/Glu605/Asp606 and are likely stabilized by other unknown residues or domains.
4.The luminal polymorphic pore residues (Glu605/Asp606 in AtTPC1) apparently do not contribute to the unitary conductance of TPC1. Under symmetrical K+ conditions, a single channel conductance of about 80 pS was determined for AtTPC1 wild type and the AtTPC1 double mutant E605A/D606A. This is in line with the three-fold higher unitary conductance of VfTPC1 (232 pS), which harbors neutral luminal pore residues at the homologous sites to AtTPC1.
In conclusion, by studying TPC1 channel from Arabidopsis thaliana and Vicia faba, the present thesis provides evidence that the natural TPC1 channel variants exhibit differences in voltage gating, luminal Ca2+ sensitivity and luminal Ca2+ binding sites.
In the scope of climate warming and the increase in frequency and intensity of severe heat waves in Central Europe, identification of temperate tree species that are suited to cope with these environmental changes is gaining increasing importance. A number of tree physiological characteristics are associated with drought-stress resistance and survival following severe heat, but recent studies have shown the importance of plant hydraulic and anatomical traits for predicting drought-induced tree mortality, such as vessel diameter, and their potential to predict species distribution in a changing climate.
A compilation of large global datasets is required to determine traits related to drought-induced embolism and test whether embolism resistance can be determined solely by anatomical traits. However, most measurements of plant hydraulic traits are labour-intense and prone to measurement artefacts. A fast, accurate and widely applicable technique is necessary for estimating xylem embolism resistance (e.g., water potential at 50% loss of conductivity, P50), in order to improve forecasts of future forest changes. These traits and their combination must have evolved following the selective pressure of the environmental conditions in which each species occurs. Describing these environmental-trait relationships can be useful to assess potential responses to environmental change and mitigation strategies for tree species, as future warmer temperatures may be compounded by drier conditions.
Bone Morphogenetic Proteins (BMPs) sind potente Differenzierungs- und Wachstumsfaktoren, die strukturell der Transforming Growth Factor-β (TGF-β) - Superfamilie zugeordnet werden. Sie spielen eine Schlüsselrolle in einer Vielzahl an zellulären Prozessen ab den frühen Stadien der Embryogenese. Dadurch sind BMPs nicht nur für die korrekte Festlegung der embryonalen Körperachse verantwortlich, sondern regulieren als multifunktionale Mediatoren neben der Morphogenese auch Proliferation, Differenzierung und Apoptose unterschiedlicher Zelltypen. Bone Morphogenetic Proteins sind somit für die Aufrechthaltung der Homöostase im adulten Körper mitverantwortlich. Ihre Funktionalität vermitteln die BMPs über eine Signalkaskade, indem sie als dimeres Protein spezifische transmembrane Serin/Threonin-Kinaserezeptoren von Typ I und Typ II in einem heteromeren Komplex assemblieren. Die intrazelluläre Signalweiterleitung verläuft über verschiedene Signalkaskaden (Smad-Proteine oder MAPKs), wodurch final im Zellkern Änderungen auf der Ebene der Gentranskription ausgelöst werden. Laut der namensgebenden Eigenschaft fungieren einige Wachstumsfaktoren als aktive Induktoren der Knochenbiosynthese. Ihre Anwesenheit ist essentiell für die vielen zellulären Prozesse, die während einer Frakturheilung auftreten, wobei eine Knochenneubildung ebenso stark abhängig ist vom Zusammenspiel verschiedener Stimulatoren und Inhibitoren, die die BMPs in ihrer Aktivität regulieren. Bedingt durch ihr großes Potential fanden die erstmals durch Marshal Urist 1965 aus Knochenmaterial isolierten BMP-Proteine ihren Einsatz in der regenerativen Medizin. Kommerziell erhältlich und bereits seit vielen Jahren in der klinischen Anwendung befindet sich derzeit das rhBMP-2 und rhBMP-7. Diese beiden Wachstumsfaktoren werden u.a. verwendet, um die Heilungsprozesse von langwierigen Schienbeinfrakturen zu verbessern, aber auch bei degenerativen Wirbelsäulenerkrankungen und in der Kieferchirurgie. Jedoch führt die schlechte Löslichkeit des BMPs aufgrund der ausgeprägten Aggregationstendenz zu gravierenden Problemen, nicht nur während der biotechnologischen Herstellung, sondern auch bei der klinischen Anwendung.
Der Schwerpunkt des Optimierungsbedarfs der BMP-2 Herstellung im Rahmen dieser Doktorarbeit lag daher auf der Etablierung eines prokaryotischen Expressionssystems für die lösliche Produktion von BMP-2. Dafür wurde zunächst der Fokus auf die ungünstigen Löslichkeitseigenschaften des Wachstumsfaktors gelegt. Um die hohe Aggregationsneigung des BMP-2 während der Produktion in Escherichia coli zu minimieren, wurden anhand einer Algorithmus-basierten Analyse BMP-2-Varianten entworfen, in denen Aminosäuren mit stark hydrophoben Eigenschaften gegen solche mit hydrophilem Charakter ausgetauscht wurden. Hierdurch konnten die zur Aggregation neigenden Bereiche des BMP-2 weitestgehend eliminiert werden. Es wurden für die bezüglich ihrer Löslichkeit optimierten Proteinvarianten unterschiedliche Expressionsstrategien etabliert, wodurch dimere BMP-2-Muteine in angepassten chromatographischen Profilen mit einem Aufreinigungsschritt und ohne jegliche Renaturierungsmaßnahmen gewonnen wurden. Allerdings verbleiben hierbei Restmengen an bakteriellen Kontaminationen, die vorwiegend aus endogenen ribosomalen E. coli-Proteinen stammen und nicht vollständig entfernt werden konnten. Während der umfassenden in vitro Charakterisierung der BMP-2-Varianten konnte durch massenspektroskopische Analysen die Gesamtmasse beider Zielproteine bestätigt werden, wobei sequenzspezifische Fragmente eine eindeutige Identifikation der eingebrachten Mutationen ermöglichten. CD-spektroskopische Analysen erweitert um Auswertealgorithmen konnten die wesentlichen Wt-BMP-2-typischen Sekundärstrukturelemente identifizieren. Die neu generierten BMP-2-Varianten zeigen in der dynamischen Lichtstreuungsanalyse stark verminderte Aggregationstendenz im Vergleich zum Wildtyp-BMP-2. Dessen Aggregationsverhalten wurde durch die kombinierte Analytik seiner mikrofluidischen Diffusion und der dynamischen Lichtstreuung zum ersten Mal über den Konzentrationsbereich von 0.5 µM bis 100 mM genau charakterisiert. Erste zellbiologische Versuche verliefen ohne Erfolg, wodurch die biologische Aktivität der BMP-Varianten nicht abschließend geklärt werden konnte.
Die simple Methode zur Expression und Aufreinigung der hydrophilisierte BMP-2-Muteine aus dieser Dissertation kann leicht in einen größeren Produktionsmaßstab überführt werden. BMP 2 kann dadurch schneller und kostengünstiger hergestellt werden. Final bleibt es jedoch erforderlich, die biologische Aktivität der neuen löslichen BMP-2-Varianten vollständig zu charakterisieren, um deren ganzes Funktionsspektrum zu entdecken. Der Fokus weiterer Forschung sollte zudem auf die verbleibende Oligomerisierungstendenz und die bestehende Kontamination mit Fremdproteinen gelegt werden, da diese beiden Faktoren letztendlich die Ausbeute an dimeren BMP-2 Varianten aus diesem System derzeit minimieren.
Plants are able to sense mechanical forces in order to defend themselves against predators,
for instance by synthesizing repellent compounds. Very few plants evolved extremely sensitive
tactile abilities that allow them to perceive, interpret and respond by rapid movement in the
milliseconds range. One such rarity is the charismatic Venus flytrap (Dionaea muscipula) - a
carnivorous plant which relies on its spectacular active trapping strategy to catch its prey. The
snapping traps are equipped with touch-specialised trigger hairs, that upon bending elicit an
action potential (AP). This electrical signal originates within the trigger hairs’ mechanosensory
cells and further propagates throughout the whole trap, alerting the plant of potential prey.
Two APs triggered within thirty seconds will set off the trap and more than five APs will
initiate the green stomach formation for prey decomposition and nutrient uptake. Neither
the molecular components of the plant’s AP nor the Venus flytrap’s fast closure mechanism
have been fully elucidated yet. Therefore, the general objective of this study is to expound
on the molecular basis of touch perception: from AP initiation to trap closure and finally to
stomach formation.
The typical electrical signal in plants lasts for minutes and its shape is determined by the
intensity of the mechanical force applied. In contrast, the Venus flytrap’s one-second AP is of
all-or-nothing type, similar in shape to the animal AP. In order to gain more insight into the
molecular components that give rise to the Venus flytrap’s emblematic AP, the transcriptomic
landscape of its unique mechanotransducer - the trigger hair – was compared to the rest
of the non-specialised tissues and organs. Additionally, the transcriptome of the electrically
excitable fully-developed adult trap was compared to non-excitable juvenile traps that are
unable to produce sharp APs. Together, the two strategies helped with the identification of
electrogenic channels and pumps for each step of the AP as follows: (1) the most specific to
the trigger hair was the mechanosensitive channel DmMSL10, making up the best candidate for
the initial AP depolarization phase, (2) the K+ outward rectifier DmSKOR could be responsible
for repolarisation, (3) further, the proton pump DmAHA4, might kick in during repolarisation
and go on with hyperpolarisation and (4) the hyperpolarization- and acid-activated K+ inward
rectifier KDM1 might contribute to the re-establishment of electrochemical gradient and
the resting potential. Responsible for the AP-associated Ca2+ wave and electrical signal
propagation, the glutamate-like receptor DmGLR3.6 was also enriched in the trigger hairs.
Together, these findings suggest that the reuse of genes involved in electrical signalling in
ordinary plants can give rise to the Venus flytrap’s trademark AP.
The Venus flytrap has been cultivated ever since its discovery, generating more than one
hundred cultivars over the years. Among them, indistinguishable from a normal Venus flytrap
at first sight, the ’ERROR’ cultivar exhibits a peculiar behaviour: it is unable to snap its traps
upon two APs. Nevertheless, it is still able to elicit normal APs. To get a better understanding
of the key molecular mechanisms and pathways that are essential for a successful trap closure,
the ’ERROR’ mutant was compared to the functional wild type.
Timelapse photography led to the observation that the ’ERROR’ mutants were able to leisurely
half close their traps when repeated mechanostimulation was applied (10 minutes after 20
APs, 0.03 Hz). As a result of touch or wounding in non-carnivorous plants, jasmonic acid
(JA) is synthesized, alerting the plants of potential predators. Curiously, the JA levels were reduced upon mechanostimulation and completely impaired upon wounding in the ’ERROR’
mutant. In search of genes accountable for the ’ERROR’ mutant’s defects, the transcriptomes
of the two phenotypes were compared before and after mechanostimulation (1h after 10
APs, 0.01 Hz). The overall dampened response of the mutant compared to the wild type,
was reflected at transcriptomic level as well. Only about 50% of wild type’s upregulated
genes after touch stimulation were differentially expressed in ’ERROR’ and they manifested
only half of the wild type’s expression amplitude. Among unresponsive functional categories
of genes in ’ERROR’ phenotype, there were: cell wall integrity surveilling system, auxin
biosynthesis and stress-related transcription factors from the ethylene-responsive AP2/ERF and
C2H2-ZF families. Deregulated Ca2+-decoding as well as redox-related elements together with
JA-pathway components might also contribute to the malfunctioning of the ’ERROR’ mutant. As
the mutant does not undergo full stomach formation after mechanical treatment, these missing
processes represent key milestones that might mediate growth-defence trade-offs under JA
signalling. This confirms the idea that carnivory has evolved by recycling the already available
molecular machineries of the ubiquitous plant immune system.
To better understand the mutant’s defect in the trap snapping mechanism, the ground states
(unstimulated traps) of the two phenotypes were compared. In this case, many cell wall-related
genes (e.g. expansins) were downregulated in the ’ERROR’ mutant. For the first time, these
data point to the importance of a special cell wall architecture of the trap, that might confer
the mechanical properties needed for a functional buckling system - which amplifies the speed
of the trap closure.
This study provides candidate channels for each of the AP phases that give rise to and shape
the sharp Venus flytrap-specific AP. It further underlines the possible contribution of the cell
wall architecture to the metastable ready-to-snap configuration of the trap before stimulation
- which might be crucial for the buckling-dependent snapping. And finally, it highlights
molecular milestones linked to defence responses that ensure trap morphing into a green
stomach after mechanostimulation. Altogether, these processes prove to be interdependent
and essential for a successful carnivorous lifestyle.
Forests are essential sources of tangible and intangible benefits, but global climate change associated with recurrent extreme drought episodes severely affects forest productivity due to extensive tree die-back. On that, it appeals to an urgency for large-scale reforestation efforts to mitigate the impact of climate change worldwide; however, there is a lack of understanding of drought-effect on sapling growth and survival mechanisms. It is also challenging to anticipate how long trees can survive and when they succumb to drought. Hence, to ensure success of reforestation programs and sustainable forest productivity, it is essential to identify drought-resistant saplings. For that, profound knowledge of hydraulic characteristics is needed. To achieve this, the study was split into two phases which seek to address (1) how the hydraulic and anatomical traits influence the sapling’s growth rate under drought stress. (2) how plant water potential regulation and physiological traits are linked to species’ water use strategies and their drought tolerance.
The dissertation is assembled of two study campaigns carried out on saplings at the Chair of Botany II, University of Würzburg, Germany. The first study involved three ecologically important temperate broadleaved tree species — saplings of 18-month (Acer pseudoplatanus, Betula pendula, and Sorbus aucuparia) — grown from seeds in contrasting conditions (inside a greenhouse and outside), with the latter being subjected to severe natural heat waves. In the second study, two additional temperate species (Fagus sylvatica and Tilia cordata) were added. The drying-out event was conducted using a randomised blocked design by monitoring plant water status in a climate-controlled chamber and a greenhouse.
In campaign I, I present the result based on analysed data of 82 plants of temperate deciduous species and address the juvenile growth rate trade-off with xylem safety-efficiency. Our results indicate biomass production varies considerably due to the contrasted growing environment. High hydraulic efficiency is necessary for increased biomass production, while safety-efficiency traits are decoupled and species-specific. Furthermore, productivity was linked considerably to xylem safety without revealing a well-defined pattern among species. Moreover, plasticity in traits differed between stressed and non-stressed plants. For example, safety-related characteristics were more static than efficiency-related traits, which had higher intra-specific variation. Moreover, we recorded anatomical and leaf traits adjustments in response to a stress condition, but consistency among species is lacking.
In campaign II, I combined different ways to estimate the degree of isohydry based on water potential regulation and connected the iso-anisohydric spectrum (i.e., hydroscape area, HSA) to hydraulic traits to elucidate actual plant performance during drought. We analysed plant water potential regulation (Ψpd and Ψmd) and stomatal conductance of 28-29 month saplings of five species. I used a linear mixed modelling approach that allowed to control individual variations to describe the water potential regulation and tested different conceptual definitions of isohydricity. The combined methods allowed us to estimate species' relative degree of isohydry. Further, we examined the traits coordination, including hydraulic safety margin, HSM; embolism resistance, P88; turgor loss, Ψtlp; stomata closure, Ps90; capacitance, C; cuticular conductance, gmin, to determine time to hydraulic failure (Thf). Thf is the cumulative effect of time to stomata closure (Tsc) and time after stomatal closure to catastrophic hydraulic failure (Tcrit).
Our results show the species' HSA matches their stomatal stringency, which confirms the relationship between stomatal response and leaf water potential decline. Species that close stomata at lower water potential notably had a larger HSA. Isohydric behaviour was mostly associated with leaf hydraulic traits and poorly to xylem safety traits. Species' degree of isohydry was also unrelated to the species' time to death during drying-out experiments. This supports the notion that isohydry behaviours are linked to water use rather than drought survival strategies. Further, consistent with our assumptions, more isohydric species had larger internal water storage and lost their leaf turgor at less negative water potentials. Counter to our expectations, neither embolism resistance nor the associated hydraulic safety margins were related to metrics of isohydry. Instead, our results indicate traits associated with plant drought response to cluster along two largely independent axes of variation (i.e., stomatal stringency and xylem safety). Furthermore, on the temporal progression of plant drought responses, stomatal closure is critical in coordinating various traits to determine species' hydraulic strategies. Desiccation avoidance strategy was linked to Tsc and coordinated traits response of Ps90, Ψtlp, and HSA, whereas desiccation tolerance was related to Tcrit and traits such as lower P88 value, high HSM, and lower gmin. Notably, the shoot capacitance (C) is crucial in Thf and exhibits dichotomous behaviour linked to both Tsc and Tcrit.
In conclusion, knowledge of growth rate trade-offs with xylem safety-efficiency combined with traits linked to species’ hydraulic strategies along the isohydry could substantially enhance our ability to identify drought-resistant saplings to ensure the success of reforestation programs and predicting sensitivity to drought for achieving sustainable forest ecosystems.
The evolutionary success of higher plants is largely attributed to their tremendous developmental
plasticity, which allows them to cope with adverse conditions. However, because these adaptations
require investments of resources, they must be tightly regulated to avoid unfavourable trade-offs.
Most of the resources required are macronutrients based on carbon and nitrogen. Limitations in the
availability of these nutrients have major effects on gene expression, metabolism, and overall plant
morphology. These changes are largely mediated by the highly conserved master kinase SNF1-RELATED
PROTEIN KINASE1 (SnRK1), which represses growth and induces catabolic processes. Downstream of
SnRK1, a hub of heterodimerising group C and S1 BASIC LEUCINE ZIPPER (bZIP) transcription factors has
been identified. These bZIPs act as regulators of nutrient homeostasis and are highly expressed in
strong sink tissues, such as flowers or the meristems that initiate lateral growth of both shoots and
roots. However, their potential involvement in controlling developmental responses through their
impact on resource allocation and usage has been largely neglected so far. Therefore, the objective of
this work was to elucidate the impact of particularly S1 bZIPs on gene expression, metabolism, and
plant development.
Due to the high homology and suspected partial redundancy of S1 bZIPs, higher order loss-of-function
mutants were generated using CRISPR-Cas9. The triple mutant bzip2/11/44 showed a variety of robust
morphological changes but maintained an overall growth comparable to wildtype plants. In detail
however, seedlings exhibited a strong reduction in primary root length. In addition, floral transition
was delayed, and siliques and seeds were smaller, indicating a reduced supply of resources to the shoot
and root apices. However, lateral root density and axillary shoot branching were increased, suggesting
an increased ratio of lateral to apical growth in the mutant. The full group S1 knockout
bzip1/2/11/44/53 showed similar phenotypes, albeit far more pronounced and accompanied by
growth retardation. Metabolomic approaches revealed that these architectural changes were
accompanied by reduced sugar levels in distal sink tissues such as flowers and roots. Sugar levels were
also diminished in leaf apoplasts, indicating that long distance transport of sugars by apoplastic phloem
loading was impaired in the mutants. In contrast, an increased sugar supply to the proximal axillary
buds and elevated starch levels in the leaves were measured. In addition, free amino acid levels were
increased in bzip2/11/44 and bzip1/2/11/44/53, especially for the important transport forms
asparagine and glutamine. The increased C and N availability in the proximal tissues could be the cause
of the increased axillary branching in the mutants.
To identify bZIP target genes that might cause the observed shifts in metabolic status, RNAseq
experiments were performed. Strikingly, clade III SUGARS WILL EVENTUALLY BE EXPORTED (SWEET)
8
genes were abundant among the differentially expressed genes. As SWEETs are crucial for sugar export
to the apoplast and long-distance transport through the phloem, their reduced expression is likely to
be the cause of the observed changes in sugar allocation. Similarly, the reduced expression of
GLUTAMINE AMIDOTRANSFERASE 1_2.1 (GAT1_2.1), which exhibits glutaminase activity, could be an
explanation for the abundance of glutamine in the mutants. Additional experiments (ATAC-seq, DAPseq, PTA, q-RT-PCR) supported the direct induction of SWEETs and GAT1_2.1 by S1 bZIPs. To confirm
the involvement of these target genes in the observed S1 bZIP mutant phenotypes, loss-of-function
mutants were obtained, which showed moderately increased axillary branching. At the same time, the
induced overexpression of bZIP11 in axillary meristems had the opposite effect.
Collectively, a model is proposed for the function of S1 bZIPs in regulating sink tissue development. For
efficient long-distance sugar transport, bZIPs may be required to induce the expression of clade III
SWEETs. Thus, reduced SWEET expression in the S1 bZIP mutants would lead to a decrease in apoplastic
sugar loading and a reduced supply to distal sinks such as shoot or root apices. The reduction in longdistance transport could lead to sugar accumulation in the leaves, which would then increasingly be
transported via symplastic routes towards proximal sinks such as axillary branches and lateral roots or
sequestered as starch. The reduced GAT1_2.1 levels lead to an abundance of glutamine, a major
nitrogen transport form. The combined effect on C and N allocation results in increased nutrient
availability in proximal tissues, promoting the formation of lateral plant organs. Alongside emerging
evidence highlighting the power of bZIPs to steer nutrient allocation in other species, a novel but
evolutionary conserved role for S1 bZIPs as regulators of developmental plasticity is proposed, while
the generation of valuable data sets and novel genetic resources will help to gain a deeper
understanding of the molecular mechanisms involved
Climate change and associated extreme weather events are a threat not only for agricultural
yields but the plant kingdom in general. Therefore, there is a great necessity to better
understand the plants' intrinsic mechanisms to combat heat stress. The plant heat stress
response already has been investigated in many studies, including the role of HSFA1
transcription factors as the central regulators. Other aspects such as the initial perception of
heat and the role of heat-induced changes in plant metabolism are rather unknown.
In this thesis, the natural variation of 250 different accessions of Arabidopsis thaliana was
investigated regarding the temperature-dependent accumulation of raffinose and
triacylglycerols. A connection between these phenotypes and respective genotypes was
established using genome-wide association studies. As a result, the candidate gene
TREHALOSE-6-PHOSPHATE SYNTHASE 1 (TPS1), was identified. Enzymatic TPS1 is responsible
for the synthesis of trehalose 6-phosphate (T6P), which serves as an indicator and regulator
of sucrose homeostasis.
Subsequent analyses using tps1 tilling mutants demonstrated a link between T6P metabolism
and an increased accumulation of various soluble carbohydrates and starch, including
raffinose both under control conditions and during heat exposure. Furthermore, the mutant
lines displayed enhanced thermotolerance and survival rates following long-term heat stress.
Transcriptome analyses, however, did not show any difference in the regulation of canonical
heat stress-associated genes. Instead, genes related to photosynthesis were overrepresented
among the differentially upregulated genes in tps1 tilling lines during heat exposure. In this
work, a direct connection of T6P signaling, sucrose homeostasis, and thermotolerance is
shown for the first time.
In a second project, two Arabidopsis thaliana accessions (Oberursel-0, accession ID: 7276;
Nieps-0, accession ID: 7268) showing distinct capacities to acquire short-term
thermotolerance were compared to identify the putative causative regulators or mechanisms
that lead to the different levels of thermotolerance.
An examination of the transcriptomes of 7268 and 7276 showed that several hundreds of
genes were already differentially regulated within 10 minutes of exposure to 32 °C or 34 °C.
Among these, several genes associated with sulfur metabolism were more highly induced in
the more thermotolerant accession 7268. However, experimental as well as genetic
manipulation of sulfur availability and metabolism did not result in altered thermotolerance.
In addition to sulfur-related genes, most of the canonical heat stress-associated genes were
more highly expressed in 7268 than in 7276. While we could not identify a causative regulator
or mechanism of differential thermotolerances, the data strongly suggests that 7268 either
has a higher overall sensitivity, i.e., the heat stress response is initiated at lower temperatures,
or stronger overall heat stress response when exposed to a certain elevated temperature.
Stomata are pores in the leaf surface, formed by pairs of guard cells. The guard cells modulate the aperture of stomata, to balance uptake of CO2 and loss of water vapor to the atmosphere. During drought, the phytohormone abscisic acid (ABA) provokes stomatal closure, via a signaling chain with both Ca2+-dependent and Ca2+-independent branches. Both branches are likely to activate SLAC1-type (Slow Anion Channel Associated 1) anion channels that are essential for initiating the closure of stomata. However, the importance of the Ca2+-dependent signaling branch is still debated, as the core ABA signaling pathway only possesses Ca2+-independent components. Therefore, the aim of this thesis was to address the role of the Ca2+-dependent branch in the ABA signaling pathway of guard cells.
In the first part of the thesis, the relation between ABA-induced Ca2+ signals and stomatal closure was studied, with guard cells that express the genetically encoded Ca2+-indicator R-GECO1-mTurquoise. Ejection of ABA into the guard cell wall rapidly induced stomatal closure, however, only in ¾ of the guard cells ABA evoked a cytosolic Ca2+ signal. A small subset of stomata (¼ of the experiments) closed without Ca2+ signals, showing that the Ca2+ signals are not essential for ABA-induced stomatal closure. However, stomata in which ABA evoked Ca2+ signals closed faster as those in which no Ca2+ signals were detected. Apparently, ABA-induced Ca2+ signals enhance the velocity of stomatal closure. In addition to ABA, hyperpolarizing voltage pulses could also trigger Ca2+ signals in wild type guard cells, which in turn activated S-type anion channels. However, these voltage pulses failed to elicit S-type anion currents in the slac1/slah3 guard cells, suggesting that SLAC1 and SLAH3 contribute to Ca2+-activated conductance. Taken together, our data indicate that ABA-induced Ca2+ signals enhance the activity of S-type anion channels, which accelerates stomatal closure.
The second part of the thesis deals with the signaling pathway downstream of the Ca2+ signals. Two types of Ca2+-dependent protein kinase modules (CPKs and CBL/CIPKs) have been implicated in guard cells. We focused on the protein kinase CIPK23 (CBL-Interacting Protein Kinase 23), which is activated by the Ca2+-dependent protein CBL1 or 9 (Calcineurin B-Like protein 1 or 9) via interacting with the NAF domain of CIPK23. The CBL1/9-CIPK23 complex has been shown to affect stomatal movements, but the underlying molecular mechanisms remain largely unknown. We addressed this topic by using an estrogen-induced expression system, which specifically enhances the expression of wild type CIPK23, a phosphomimic CIPK23T190D and a kinase dead CIPK23K60N in guard cells. Our data show that guard cells expressing CIPK23T190D promoted stomatal opening, while CIPK23K60N enhanced ABA-induced stomatal closure, suggesting that CIPK23 is a negative regulator of stomatal closure. Electrophysiological measurements revealed that the inward K+ channel currents were similar in guard cells that expressed CIPK23, CIPK23T190D or CIPK23K60N, indicating that CIPK23-mediated inward K+ channel AKT1 does not contribute to stomatal movements. Expression of CIPK23K60N, or loss of CIPK23 in guard cells enhanced S-type anion activity, while the active CIPK23T190D inhibited the activity of these anion channels. These results are in line with the detected changes in stomatal movements and thus indicate that CIPK23 regulates stomatal movements by inhibiting S-type anion channels. CIPK23 thus serves as a brake to control anion channel activity. Overall, our findings demonstrate that CIPK23-mediated stomatal movements do not depend on CIPK23-AKT1 module, instead, it is achieved by regulating S-type anion channels SLAC1 and SLAH3.
In sum, the data presented in this thesis give new insights into the Ca2+-dependent branch of ABA signaling, which may help to put forward new strategies to breed plants with enhanced drought stress tolerance, and in turn boost agricultural productivity in the future.
Calcium ion (Ca2+) and protons (H+) are both regarded as second messengers, participating in plant growth and stress mechanisms. However, H+ signals in plant physiology are less well investigated compared to Ca2+ signals. If interconnections between these two second messengers exist remains to be uncovered because appropriate imaging tools to monitor Ca2+ and H+ simultaneously in the same cell as well as accurate bioinformatics analysis remain to be developed. To overcome this problem and unravel the role and possible interconnection of Ca2+ and H+ in plants, a new biosensor named CapHensor was developed and optimized to visualize intracellular Ca2+ and H+ changes simultaneously and ratiometrically in the same cell. The CapHensor consisted of an optimized green fluorescent pH sensor (PRpHluorin) and an established red fluorescent Ca2+ sensor (R-GECO1) that were combined in one construct via a P2A sequence. A P2A self-cleavage site between the two sensors allowed to express equal amounts but spatially separated sensors, which enabled artifact-free and ratiometric imaging of cellular Ca2+ and pH side-by-side. The function of the CapHensor was verified in pollen tubes, since they possess standing Ca2+ and pH gradients. We found better imaging quality and the signal-to-noise ratio to be enhanced in live-cell imaging when two R-GECO1 proteins were fused in tandem within the CapHensor construct. To guarantee exclusive subcellular localization and avoid mixed signals from different compartments, Nuclear Export Sequence (NES) and Nuclear Localization Sequence (NLS) were used to target PRpHluorin and R-GECO1 to distinct compartments. After optimization and verification its function, CapHensor was successfully expressed in different cell types to investigate the role of Ca2+ and H+ signals to control polar growth of pollen tube, stomatal movement or leaf defense signaling. Results obtained in the past indicated both Ca2+ gradients and pH gradients in pollen tubes play roles in polar growth. However, the role and temporal relationship between the growth process and changes in Ca2+ and pH have not been conclusively resolved. Using CapHensor, I found cytosolic acidification at the tip could promote and alkalization to suppress growth velocity in N. tabacum pollen tubes, indicating that cytosolic H+ concentrations ([H+]cyt) play an important role in regulation pollen tubes growth despite the accompanied changes in cytosolic Ca2+ concentrations ([Ca2+]cyt). Moreover, growth correlated much better with the tip [H+]cyt regime than with the course of the tip [Ca2+]cyt regime. However, surprisingly, tip-focused [Ca2+]cyt andII [H+]cyt oscillations both lagged behind growth oscillations approximately 33 s and 18 s, respectively, asking for a re-evaluation of the role that tip [Ca2+]cyt may play in pollen tube growth. Live-cell CapHensor imaging combined with electrophysiology uncovered that oscillatory membrane depolarization correlated better with tip [H+]cyt oscillations than with tip [Ca2+]cyt oscillations, indicative for a prominent role of [H+]cyt to also control electrogenic membrane transport. Using CapHensor, reading out cellular movement at the same time enabled to provide a precise temporal and spatial resolution of ion signaling events, pointing out a prominent role of [H+]cyt in pollen tube tip growth. For leaf cells, a special CapHensor construct design had to be developed, containing additional NES localization sequences to avoid overlapping of fluorescense signals from the nucleus and the cytosol. Once this was achieved, the role of Ca2+ and pH changes in guard cells, another typical single-cell system was investigated. Cytosolic pH changes have been described in stomatal movement, but the physiological role of pH and the interaction with changing Ca2+ signals were still unexplored. Combining CapHensor with the here developed technique to monitor stomatal movement in parallel, the role of Ca2+ and H+ in stomatal movement was studied in detail and novel aspects were identified. The phytohormone ABA and the bacterial elicitor flagellin (flg22) are typical abiotic and biotic stresses, respectively, to trigger stomatal closure. What kind of Ca2+ and H+ signals by ABA and flg22 are set-off in guard cells and what their temporal relationship and role for stomatal movement is were unknown. Similar [Ca2+]cyt increases were observed upon ABA and flg22 triggered stomatal closure, but [H+]cyt dynamics differed fundamentally. ABA triggered pronounced cytosolic alkalization preceded the [Ca2+]cyt responses significantly by 57 s while stomata started to close ca. 205 s after phytohormone application. With flg22, stomatal closure was accompanied only with a mild cytosolic alkalization but the [Ca2+]cyt response was much more pronounced compared to the ABA effects. Where the cytosolic alkalization originates from was unclear but the vacuole was speculated to contribute in the past. In this thesis, vacuolar pH changes were visualized by the dye BCECF over time, basically displaying exactly the opposite course of the concentration shift in the vacuole than observed in the cytosol. This is indicative for the vacuolar pH dynamics to be coupled strongly to the cytosolic pH changes. In stomatal closure signalling, reactive oxygen species (ROS) were proposed to play a major role, however, only very high concentration of H2O2 (> 200 µM), which resulted in the loss of membrane integrity, induced stomatal closure. Unexpectedly, physiological concentrations of ROS led to cytosolic acidificationIII which was associated with stomatal opening, but not stomatal closure. To study the role of [H+]cyt to steer stomatal movement in detail, extracellular and intracellular pH variations were evoked in N. tabacum guard cells and their behaviour was followed. The results demonstrated cytosolic acidification stimulated stomatal opening while cytosolic alkalization triggered stomatal closure accompanied by [Ca2+]cyt elevations. This demonstrated pH regulation to be an important aspect in stomatal movement and to feed-back on the Ca2+-dynamics. It was remarkable that cytosolic alkalization but not [Ca2+]cyt increase seemed to play a crucial role in stomatal closure, because more pronounced cytosolic alkalization, evoked stronger stomatal closure despite similar [Ca2+]cyt increases. Increases in [Ca2+]cyt, which are discussed as an early stomatal closure signal in the past, could not trigger stomatal closure alone in my experiments, even when extremely strong [Ca2+]cyt signals were triggered. Regarding the interaction between the two second messengers, [Ca2+]cyt and [H+]cyt were negatively correlated most of the times, which was different from pollen tubes showing positive correlation of [Ca2+]cyt and [H+]cyt regimes. [Ca2+]cyt elevations were always associated with a cytosolic alkalization and this relationship could be blocked by the presence of vanadate, a plasma membrane H+-pump blocker, indicating plasma membrane H+-ATPases to contribute to the negative correlation of [Ca2+]cyt and [H+]cyt. To compare with guard cells, cytosolic and nuclear versions of CapHensor were expressed in N. benthamiana mesophyll cells, a multicellular system I investigated. Mesophyll cell responses to the same stimuli as tested in guard cells demonstrated that ABA and H2O2 did not induce any [Ca2+]cyt and [H+]cyt changes while flg22 induced an increase in [Ca2+]cyt and [H+]cyt, which is different from the response in guard cells. I could thus unequivocally demonstrate that guard cells and mesophyll cells do respond differently with [Ca2+]cyt and [H+]cyt changes to the same stimuli, a concept that has been proposed before, but never demonstrated in such detail for plants. Spontaneous Ca2+ oscillations have been observed for a long time in guard cells, but the function or cause is still poorly understood. Two populations of oscillatory guard cells were identified according to their [Ca2+]cyt and [H+]cyt phase relationship in my study. In approximately half of the oscillatory cells, [H+]cyt oscillations preceded [Ca2+]cyt oscillations whereas [Ca2+]cyt was the leading signal in the other half of the guard cells population. Strikingly, natural [H+]cyt oscillations were dampened by ABA but not by flg22. This effect could be well explained by dampening of vacuolar H+ oscillations in the presence of ABA, but not through flg22. Vacuolar pH contributes to spontaneous [H+]cyt oscillations and ABA but not flg22 can block the interdependence of naturalIV [Ca2+]cyt and [H+]cyt signals. To study the role of [Ca2+]cyt oscillations in stomatal movement, solutions containing high and low KCl concentrations were applied aiming to trigger [Ca2+]cyt oscillations. The triggering of [Ca2+]cyt oscillations by this method was established two decades ago leading to the dogma that [Ca2+]cyt increases are the crucial signal for stomatal closure. However, I found stomatal movement by this method was mainly due to osmotic effects rather than [Ca2+]cyt increases. Fortunately, through this methodology, I found a strong correlation between cytosolic pH and the transport of potassium across the plasma membrane and vacuole existed. The plasma membrane H+-ATPases and H+-coupled K+ transporters were identified as the cause of [H+]cyt changes, both very important aspects in stomata physiology that were not visualized experimentally before. Na+ transport is also important for stomatal regulation and leaves generally since salt can be transported from the root to the shoot. Unlike well-described Ca2+- dependent mechanisms in roots, how leaves process salt stress is not at all understood. I applied salt on protoplasts from leaves, mesophyll cells and guard cells and combined live-cell imaging with Vm recordings to understand the transport and signaling for leaf cells to cope with salt stress. In both, mesophyll and guard cells, NaCl did not trigger Ca2+-signals as described for roots but rather triggered Ca2+ peaks when washing salt out. However, membrane depolarization and pronounced alkalinization were very reliably triggered by NaCl, which could presumably act as a signal for detoxification of high salt concentrations. In line with this, I found the vacuolar cation/H+ antiporter NHX1 to play a role in sodium transport, [H+]cyt homeostasis and the control of membrane potential. Overexpression of AtNHX1 enabled to diminish [H+]cyt changes and resulted in a smaller depolarization responses druing NaCl stress. My results thus demonstrated in contrast to roots, leaf cells do not use Ca2+-dependent signalling cascades to deal with salt stress. I could show Na+ and K+ induced [H+]cyt and Vm responses and Cl- transport to only have a minor impact. Summing all my results up briefly, I uncovered pH signals to play important roles to control pollen tube growth, stomatal movement and leaf detoxification upon salt. My results strongly suggested pH changes might be a more important signal than previously thought to steer diverse processes in plants. Using CapHensor in combination with electrophysiology and bioinformatics tools, I discovered distinct interconnections between [Ca2+]cyt and [H+]cyt in different cell types and distinct [Ca2+]cyt and [H+]cyt signals are initiated through diverse stimuli and environmental cues. The CapHensor will be very useful in the future to further investigate the coordinated role of Ca2+ and pH changes in controlling plant physiology.
Bone morphogenetic proteins (BMPs) are involved in various aspects of cell-cell communication in complex life forms. They act as morphogens, help differentiate different cell types from different progenitor cells in development, and are involved in many instances of intercellular communication, from forming a body axis to healing bone fractures, from sugar metabolism to angiogenesis. If the same protein or protein family carries out many functions, there is a demand to regulate and fine-tune their biological activities, and BMPs are highly regulated to generate cell- and context-dependent outcomes.
Not all such instances can be explained yet. Growth/differentiation factor (GDF)5 (or BMP14) synergizes with BMP2 on chondrogenic ATDC5 cells, but antagonizes BMP2 on myoblastic C2C12 cells. Known regulators of BMP2/GDF5 signal transduction failed to explain this context-dependent difference, so a microarray was performed to identify new, cell-specific regulatory components. One identified candidate, the fibroblast growth factor receptor (FGFR)2, was analyzed as a potential new co-receptor to BMP ligands such as GDF5: It was shown that FGFR2 directly binds BMP2, GDF5, and other BMP ligands in vitro, and FGFR2 was able to positively influence BMP2/GDF5-mediated signaling outcome in cell-based assays. This effect was independent of FGFR2s kinase activity, and independent of the downstream mediators SMAD1/5/8, p42/p44, Akt, and p38. The elevated colocalization of BMP receptor type IA and FGFR2 in the presence of BMP2 or GDF5 suggests a signaling complex containing both receptors, akin to other known co-receptors of BMP ligands such as repulsive guidance molecules.
This unexpected direct interaction between FGF receptor and BMP ligands potentially opens a new category of BMP signal transduction regulation, as FGFR2 is the second receptor tyrosine kinase to be identified as BMP co-receptor, and more may follow. The integration of cell surface interactions between members of the FGF and BMP family especially may widen the knowledge of such cellular communication mechanisms which involve both growth factor families, including morphogen gradients and osteogenesis, and may in consequence help to improve treatment options in osteochodnral diseases.
Honeybees (Apis mellifera) need their fine sense of taste to evaluate nectar and pollen sources. Gustatory receptors (Grs) translate taste signals into electrical responses. In vivo experiments have demonstrated collective responses of the whole Gr-set. We here disentangle the contributions of all three honeybee sugar receptors (AmGr1-3), combining CRISPR/Cas9 mediated genetic knock-out, electrophysiology and behaviour. We show an expanded sugar spectrum of the AmGr1 receptor. Mutants lacking AmGr1 have a reduced response to sucrose and glucose but not to fructose. AmGr2 solely acts as co-receptor of AmGr1 but not of AmGr3, as we show by electrophysiology and using bimolecular fluorescence complementation. Our results show for the first time that AmGr2 is indeed a functional receptor on its own. Intriguingly, AmGr2 mutants still display a wildtype-like sugar taste. AmGr3 is a specific fructose receptor and is not modulated by a co-receptor. Eliminating AmGr3 while preserving AmGr1 and AmGr2 abolishes the perception of fructose but not of sucrose. Our comprehensive study on the functions of AmGr1, AmGr2 and AmGr3 in honeybees is the first to combine investigations on sugar perception at the receptor level and simultaneously in vivo. We show that honeybees rely on two gustatory receptors to sense all relevant sugars.
Sphingolipid long-chain bases (LCBs) are the building blocks of the biosynthesis of sphingolipids. They
are defined as structural elements of the plant cell membrane and play an important role
determining the fate of the cells. Complex ceramides represent a substantial fraction of total
sphingolipids which form a major part of eukaryotic membranes. At the same time, LCBs are well
known signaling molecules of cellular processes in eukaryotes and are involved in signal transduction
pathways in plants. High levels of LCBS have been shown to be associated with the induction of
programmed cell death as well as pathogen-derived toxin-induced cell death. Indeed, several studies
confirmed the regulatory function of sphingobases in plant programmed cell death (PCD):
(i) Spontaneous PCD and altered cell death reaction caused by mutated related genes of sphingobase
metabolism. (ii) Cell death conditions increases levels of LCBs. (iii) PCD due to interfered sphingolipid
metabolism provoked by toxins produced from necrotrophic pathogens, such as Fumonisin B1 (FB1).
Therefore, to prevent cell death and control cell death reaction, the regulation of levels of free LCBs
can be crucial.
The results of the present study challenged the comprehension of sphingobases and sphingolipid
levels during PCD. We provided detailed analysis of sphingolipids levels that revealed correlations of
certain sphingolipid species with cell death. Moreover, the investigation of sphingolipid biosynthesis
allowed us to understand the flux after the accumulation of high LCB levels. However, further
analysis of degradation products or sphingolipid mutant lines, would be required to fully understand
how high levels of sphingobases are being treated by the plant.
In contrast to the well described molecular basis for S-type anion currents, the genes underlying R-type anion currents were unknown until 2010. Meyer S. and colleagues (2010) showed that, localized in the guard cell plasma membrane, AtALMT12 is an R-type anion channel involved in stomatal closure. However, knocking out AtALMT12 did not fully shut down R-type currents; the almt12 loss-of-function mutant has residual R-type-like currents indicating that ALMT12 is not the only gene encoding Arabidopsis thaliana R-type channels (Meyer S. et al., 2010). This PhD thesis is focussed on understanding the properties, regulation and molecular nature of the R-type channels in Arabidopsis thaliana plants. To fulfil these aims, the patch clamp technique was used to characterize electrical features of R-type currents in various conditions such as the presence/absence of ATP, variation in cytosolic calcium concentration or the presence of cytosolic chloride. Electrophysiological study revealed many similarities between the features of Arabidopsis thaliana R-type currents (Col0) and residual R-type currents (the almt12 loss-of-function mutant). Strong voltage dependency, channel activity in the same voltage range, position of maximal recorded current and blockage by cytosolic ATP all pointed to a shared phylogenetic origin of the channels underlying these R-type currents. Expression patterns of the ALMT family members for Col0 and the almt12 mutant revealed ALMT13 and AMT14 as potential candidates of the R-type channels. Electrical characterization of Col0, almt12 and the two double loss-of-function mutants (almt12/almt13 and almt12/almt14) strongly suggest that ALMT13 mediates the calcium-dependent R-type current component that is directly regulated by cytosolic calcium. Additionally, similarly to ALMT12, ALMT14 could participate as a calcium-independent R-type anion channel. Differences in response to the cytosolic calcium concentration between ALMT12, ALMT13 and ALMT14 suggest their possible involvement in different signalling pathways leading to stomatal closure. Moreover, a study performed for the two Arabidopsis thaliana ecotypes Col0 and WS showed drastically increased ALMT13 expression for WS, which is related to R-type current properties. The WS ecotype has calcium-dependent R-type current behaviour, while it is calcium-independent in Col0. Furthermore, this plant line showed lower peak current densities compared to Col0 and almt mutants. These facts strongly suggest interaction between ALMT12 and ALMT13, with ALMT13 as a repressor of the ALMT12. Acquired patch clamp data revealed sulphate-dependent increases in ALMT13 current. This could be caused by changes in absolute open probability and/or permeability for sulphate and possibly chloride and links ALMT13 with sulphate-mediated stomatal closure under drought stress. It was then confirmed that ATP affects R-type currents. In contrast to Vicia faba, ATP was identified as a negative regulator of the Arabidopsis thaliana R-type anion channels. The effect of ATP is ambiguous but there is a high probability that it is a result of direct block and phosphorylation. However, the phosphorylation site and place of ATP binding needs further investigation.
The story of the ALMT family, as examined in this thesis, sheds light on the complexity of the stomatal closure process.
Optogenetics is a powerful technique that utilizes light to precisely regulate physiological activities of neurons and other cell types. Specifically, light-sensitive ion channels, pumps or enzymes are expressed in cells to enable their regulation by illumination, thus allowing for precise control of biochemical signaling pathways. The first part of my study involved the construction, optimization, and characterization of two optogenetic tools, KCR1 and NCR1. Elena Govorunova et al. discovered a lightgated potassium channel, KCR1, in the protozoan Hyphochytrium catenoides. Traditional potassium ion channels are classified as either ligand-gated or voltage-gated and possess conserved pore-forming domains and K+ -selective filters. However, KCR1 is unique in that it does not contain the signature sequence of previously known K+ channels and is a channelrhodopsin. We synthesized the KCR1 plasmid according to the published sequence and expressed it in Xenopus oocytes. Due to the original KCR1 current being too small, I optimized it into KCR1 2.0 to improve its performance by fusing LR (signal peptide LucyRho, enhances expression) at the N-terminal and T (trafficking signal peptide) and E (ER export signal peptide) at the C-terminal. Additionally, I investigated the light sensitivity, action spectrum, and kinetics of KCR1 2.0 in Xenopus oocytes. The potassium permeability of KCR1 2.0, PK/Pna 24, makes KCR1 2.0 a powerful hyperpolarizing tool that can be used to inhibit neuronal firing in animals. Inspired by KCR1, we used the KCR1 sequence as a template for gene sequence alignment with the sequences in H. catenoides. We found that NCR1 and KCR1 have similar gene sequences. NCR1 was characterized by us as a light-gated sodium channel. This NCR1 was also characterized and published by Govorunova et al. very recently, with the name HcCCR. Due to the original NCR1 current being too small, I optimized it into NCR1 2.0 to improve its performance by fusing LR at the N-terminal and T and E at the C-terminal, which significantly improved the expression level and greatly increased the current amplitude of NCR1. Full-length NCR1 2.0 contains 432 amino acids. To test whether the number of amino acids changes the characteristics of NCR1 2.0, we designed NCR1 2.0 (330), NCR1 2.0 (283), and NCR1 2.0 (273) by retaining the number of amino acids at 330, 280, and 273 in NCR1 2.0, respectively. As the number of amino acids decreased, the current in NCR1 2.0 increased. I also investigated the light sensitivity, action spectrum, and kinetics of NCR1 2.0 (273) in the Xenopus Abstract 2 oocytes. We performed four point mutations at amino acid positions 133 and 116 of NCR1 2.0 and analyzed the reversal potentials of the mutants. The mutations were as follows: NCR1 2.0 (273 D116H), NCR1 2.0 (273 D116E), NCR1 2.0 (283 V133H), and NCR1 2.0 (283 D116Q). The second part of this study focuses on light-induced water transport using optogenetic tools. We explored the use of optogenetic tools to regulate water flow by changing the osmolarity in oocytes. Water flux through AQP1 is driven by the osmotic gradient that results from concentration differences of small molecules or ions. Therefore, we seek to regulate ion concentrations, using optogenetic tools to regulate the flux of water noninvasively. To achieve this, I applied the light-gated cation channels XXM 2.0 and NCR1 2.0 to regulate the concentration of Na+ , while K + channel KCR1 2.0 was used to regulate K + concentration. As Na+ flows into the Xenopus oocytes, the membrane potential of the oocytes becomes positive, and Clcan influx through the light-gated anion channel GtACR1. By combining these optogenetic tools to regulate NaCl or KCl concentrations, I can change the osmolarity inside the oocytes, thus regulating the flux of water. I co-expressed AQP1 with optogenetic tools in the oocytes to accelerate water flux. Overall, I designed three combinations (1: AQP1, XXM 2.0 and GtACR1. 2: AQP1, NCR1 2.0 and GtACR1. 3: AQP1, KCR1 2.0 and GtACR1) to regulate the flow of water in oocytes. The shrinking or swelling of the oocytes can only be achieved when AQP1, light-gated cation channels (XXM 2.0/NCR1 2.0/KCR1 2.0), and light-gated anion channels (GtACR1) are expressed together. The illumination after expression of either or both alone does not result in changes in oocyte morphology. In sum, I demonstrated a novel strategy to manipulate water movement into and out of Xenopus oocytes, non-invasively through illumination. These findings provide a new avenue to interfere with water homeostasis as a means to study related biological phenomena across cell types and organisms.
The light-gated cation channel Channelrhodopsin-2 was discovered and characterized in 2003. Already in 2005/2006 five independent groups demonstrated that heterologous expression of Channelrhodopsin-2 is a highly useful and simply applicable method for depolarizing and thereby activating nerve cells. The application of Channelrhodopsin-2 revolutionized neuroscience research and the method was then called optogenetics. In recent years more and more light-sensitive proteins were successfully introduced as “optogenetic tools”, not only in neuroscience. Optogenetic tools for neuronal excitation are well developed with many different cation-conducting wildtype and mutated channelrhodopsins, whereas for inhibition of neurons in the beginning (2007) only hyperpolarizing ion pumps were available. The later discovered light-activated anion channels (anion channelrhodopsins) can be useful hyperpolarizers, but only at low cytoplasmic anion concentration. For this thesis, I optimized CsR, a proton-pumping rhodopsin from Coccomyxa subellipsoidea, which naturally shows a robust expression in Xenopus laevis oocytes and plant leaves. I improved the expression and therefore the photocurrent of CsR about two-fold by N-terminal modification to the improved version CsR2.0, without altering the proton pump function and the action spectrum. A light pulse hyperpolarised the mesophyll cells of CsR2.0-expressing transgenic tobacco plants (N. tabacum) by up to 20 mV from the resting membrane potential of -150 to -200 mV. The robust heterologous expression makes CsR2.0 a promising optogenetic tool for hyperpolarization in other organisms as well. A single R83H point-mutation converted CsR2.0 into a light-activated (passive) proton channel with a reversal potential close to the Nernst potential for intra-/extra-cellular H+ concentration. This light-gated proton channel is expected to become a further useful optogenetic tool, e.g. for analysis of pH-regulation in cells or the intercellular space. Ion pumps as optogenetic tools require high expression levels and high light intensity for efficient pump currents, whereas long-term illumination may cause unwanted heating effects. Although anion channelrhodopsins are effective hyperpolarizing tools in some cases, their effect on neuronal activity is dependent on the cytoplasmic chloride concentration which can vary among neurons. In nerve cells, increased conductance for potassium terminates the action potential and K+ conductance underlies the resting membrane potential in excitable cells. Therefore, several groups attempted to synthesize artificial light-gated potassium channels but 2 all of these published innovations showed serious drawbacks, ranging from poor expression over lacking reversibility to poor temporal precision. A highly potassium selective light-sensitive silencer of action potentials is needed. To achieve this, I engineered a light-activated potassium channel by the genetic fusion of a photoactivated adenylyl cyclase, bPAC, and a cAMP-gated potassium channel, SthK. Illumination activates bPAC to produce cAMP and the elevated cAMP level opens SthK. The slow diffusion and degradation of cAMP makes this construct a very light-sensitive, long-lasting inhibitor. I have successfully developed four variants with EC50 to cAMP ranging from 7 over 10, 21, to 29 μM. Together with the original fusion construct (EC50 to cAMP is 3 μm), there are five different light- (or cAMP-) sensitive potassium channels for researchersto choose, depending on their cell type and light intensity needs.
To fire action-potential-like electrical signals, the vacuole membrane requires the two-pore channel TPC1, formerly called SV channel. The TPC1/SV channel functions as a depolarization-stimulated, non-selective cation channel that is inhibited by luminal Ca\(^{2+}\). In our search for species-dependent functional TPC1 channel variants with different luminal Ca\(^{2+}\) sensitivity, we found in total three acidic residues present in Ca\(^{2+}\) sensor sites 2 and 3 of the Ca\(^{2+}\)-sensitive AtTPC1 channel from Arabidopsis thaliana that were neutral in its Vicia faba ortholog and also in those of many other Fabaceae. When expressed in the Arabidopsis AtTPC1-loss-of-function background, wild-type VfTPC1 was hypersensitive to vacuole depolarization and only weakly sensitive to blocking luminal Ca\(^{2+}\). When AtTPC1 was mutated for these VfTPC1-homologous polymorphic residues, two neutral substitutions in Ca\(^{2+}\) sensor site 3 alone were already sufficient for the Arabidopsis At-VfTPC1 channel mutant to gain VfTPC1-like voltage and luminal Ca\(^{2+}\) sensitivity that together rendered vacuoles hyperexcitable. Thus, natural TPC1 channel variants exist in plant families which may fine-tune vacuole excitability and adapt it to environmental settings of the particular ecological niche.
Interleukin-4 (IL-4) plays a key role in atopic diseases. It coordinates T-helper cell differentiation to subtype 2, thereby directing defense toward humoral immunity. Together with Interleukin-13, IL-4 further induces immunoglobulin class switch to IgE. Antibodies of this type activate mast cells and basophilic and eosinophilic granulocytes, which release pro-inflammatory mediators accounting for the typical symptoms of atopic diseases. IL-4 and IL-13 are thus major targets for pharmaceutical intervention strategies to treat atopic diseases. Besides neutralizing antibodies against IL-4, IL-13, or its receptors, IL-4 antagonists can present valuable alternatives. Pitrakinra, an Escherichia coli-derived IL-4 antagonist, has been evaluated in clinical trials for asthma treatment in the past; however, deficits such as short serum lifetime and potential immunogenicity among others stopped further development. To overcome such deficits, PEGylation of therapeutically important proteins has been used to increase the lifetime and proteolytic stability. As an alternative, glycoengineering is an emerging strategy used to improve pharmacokinetics of protein therapeutics. In this study, we have established different strategies to attach glycan moieties to defined positions in IL-4. Different chemical attachment strategies employing thiol chemistry were used to attach a glucose molecule at amino acid position 121, thereby converting IL-4 into a highly effective antagonist. To enhance the proteolytic stability of this IL-4 antagonist, additional glycan structures were introduced by glycoengineering utilizing eucaryotic expression. IL-4 antagonists with a combination of chemical and biosynthetic glycoengineering could be useful as therapeutic alternatives to IL-4 neutralizing antibodies already used to treat atopic diseases.
Young grapevines (Vitis vinifera) suffer and eventually can die from the crown gall disease caused by the plant pathogen Allorhizobium vitis (Rhizobiaceae). Virulent members of A. vitis harbor a tumor-inducing plasmid and induce formation of crown galls due to the oncogenes encoded on the transfer DNA. The expression of oncogenes in transformed host cells induces unregulated cell proliferation and metabolic and physiological changes. The crown gall produces opines uncommon to plants, which provide an important nutrient source for A. vitis harboring opine catabolism enzymes. Crown galls host a distinct bacterial community, and the mechanisms establishing a crown gall–specific bacterial community are currently unknown. Thus, we were interested in whether genes homologous to those of the tumor-inducing plasmid coexist in the genomes of the microbial species coexisting in crown galls. We isolated 8 bacterial strains from grapevine crown galls, sequenced their genomes, and tested their virulence and opine utilization ability in bioassays. In addition, the 8 genome sequences were compared with 34 published bacterial genomes, including closely related plant-associated bacteria not from crown galls. Homologous genes for virulence and opine anabolism were only present in the virulent Rhizobiaceae. In contrast, homologs of the opine catabolism genes were present in all strains including the nonvirulent members of the Rhizobiaceae and non-Rhizobiaceae. Gene neighborhood and sequence identity of the opine degradation cluster of virulent and nonvirulent strains together with the results of the opine utilization assay support the important role of opine utilization for cocolonization in crown galls, thereby shaping the crown gall community.
Modern lifestyle is often at odds with endogenously driven rhythmicity, which can lead to circadian disruption and metabolic syndrome. One signature for circadian disruption is a reduced or altered metabolite cycling in the circulating tissue reflecting the current metabolic status. Drosophila is a well-established model in chronobiology, but day-time dependent variations of transport metabolites in the fly circulation are poorly characterized. Here, we sampled fly hemolymph throughout the day and analyzed diacylglycerols (DGs), phosphoethanolamines (PEs) and phosphocholines (PCs) using LC-MS. In wild-type flies kept on sugar-only medium under a light-dark cycle, all transport lipid species showed a synchronized bimodal oscillation pattern with maxima at the beginning and end of the light phase which were impaired in period01 clock mutants. In wild-type flies under constant dark conditions, the oscillation became monophasic with a maximum in the middle of the subjective day. In strong support of clock-driven oscillations, levels of the targeted lipids peaked once in the middle of the light phase under time-restricted feeding independent of the time of food intake. When wild-type flies were reared on full standard medium, the rhythmic alterations of hemolymph lipid levels were greatly attenuated. Our data suggest that the circadian clock aligns daily oscillations of DGs, PEs, and PCs in the hemolymph to the anabolic siesta phase, with a strong influence of light on phase and modality.
Plants extract mineral nutrients from the soil, or from interactions with mutualistic soil microbes via their root systems. Adapting root architecture to nutrient availability enables efficient resource utilization, particularly in patchy and dynamic environments. Root growth responses to soil nitrogen levels are shoot-mediated, but the identity of shoot-derived mobile signals regulating root growth responses has remained enigmatic. Here we show that a shoot-derived micro RNA, miR2111, systemically steers lateral root initiation and nitrogen responsiveness through its root target TML (TOO MUCH LOVE) in the legume Lotus japonicus, where miR2111 and TML were previously shown to regulate symbiotic infections with nitrogen fixing bacteria. Intriguingly, systemic control of lateral root initiation by miR2111 and TML/HOLT (HOMOLOGUE OF LEGUME TML) was conserved in the nonsymbiotic ruderal Arabidopsis thaliana, which follows a distinct ecological strategy. Thus, the miR2111-TML/HOLT regulon emerges as an essential, conserved factor in adaptive shoot control of root architecture in dicots.
Small bacterial regulatory RNAs (sRNAs) have been implicated in the regulation of numerous metabolic pathways. In most of these studies, sRNA-dependent regulation of mRNAs or proteins of enzymes in metabolic pathways has been predicted to affect the metabolism of these bacteria. However, only in a very few cases has the role in metabolism been demonstrated. Here, we performed a combined transcriptome and metabolome analysis to define the regulon of the sibling sRNAs NgncR_162 and NgncR_163 (NgncR_162/163) and their impact on the metabolism of Neisseria gonorrhoeae. These sRNAs have been reported to control genes of the citric acid and methylcitric acid cycles by posttranscriptional negative regulation. By transcriptome analysis, we now expand the NgncR_162/163 regulon by several new members and provide evidence that the sibling sRNAs act as both negative and positive regulators of target gene expression. Newly identified NgncR_162/163 targets are mostly involved in transport processes, especially in the uptake of glycine, phenylalanine, and branched-chain amino acids. NgncR_162/163 also play key roles in the control of serine-glycine metabolism and, hence, probably affect biosyntheses of nucleotides, vitamins, and other amino acids via the supply of one-carbon (C\(_1\)) units. Indeed, these roles were confirmed by metabolomics and metabolic flux analysis, which revealed a bipartite metabolic network with glucose degradation for the supply of anabolic pathways and the usage of amino acids via the citric acid cycle for energy metabolism. Thus, by combined deep RNA sequencing (RNA-seq) and metabolomics, we significantly extended the regulon of NgncR_162/163 and demonstrated the role of NgncR_162/163 in the regulation of central metabolic pathways of the gonococcus.
The discovery, heterologous expression, and characterization of channelrhodopsin-2 (ChR2) – a light-sensitive cation channel found in the green alga Chlamydomonas reinhardtii – led to the success of optogenetics as a powerful technology, first in neuroscience. ChR2 was employed to induce action potentials by blue light in genetically modified nerve cells. In optogenetics, exogenous photoreceptors are expressed in cells to manipulate cellular activity. These photoreceptors were in the beginning mainly microbial opsins. During nearly two decades, many microbial opsins and their mutants were explored for their application in neuroscience. Until now, however, the application of optogenetics to plant studies is limited to very few reports. Several optogenetic strategies for plant research were demonstrated, in which most attempts are based on non-opsin optogenetic tools. Opsins need retinal (vitamin A) as a cofactor to generate the functional protein, the rhodopsin. As most animals have eyes that contain animal rhodopsins, they also have the enzyme - a 15, 15'-Dioxygenase - for retinal production from food-supplied provitamin A (beta-carotene). However, higher plants lack a similar enzyme, making it difficult to express functional rhodopsins successfully in plants. But plant chloroplasts contain plenty of beta-carotene. I introduced a gene, coding for a 15, 15'-Dioxygenase with a chloroplast target peptide, to tobacco plants. This enzyme converts a molecule of β-carotene into two of all-trans-retinal. After expressing this enzyme in plants, the concentration of all-trans-retinal was increased greatly. The increased retinal concentration led to increased expression of several microbial opsins, tested in model higher plants. Unfortunately, most opsins were observed intracellularly and not in the plasma membrane. To improve their localization in the plasma membrane, some reported signal peptides were fused to the N- or C-terminal end of opsins. Finally, I helped to identify three microbial opsins -- GtACR1 (a light-gated anion channel), ChR2 (a light-gated cation channel), PPR (a light-gated proton pump) which express and work well in the plasma membrane of plants. The transgene plants were grown under red light to prevent activation of the expressed opsins. Upon illumination with blue or green light, the activation of these opsins then induced the expected change of the membrane potential, dramatically changing the phenotype of plants with activated rhodopsins.
This study is the first which shows the potential of microbial opsins for optogenetic research in higher plants, using the ubq10 promoter for ubiquitous expression. I expect this to be just the beginning, as many different opsins and tissue-specific promoters for selective expression now can be tested for their usefulness. It is further to be expected that the here established method will help investigators to exploit more optogenetic tools and explore the secrets, kept in the plant kingdom.
To reach their target site, systemic pesticides must enter the plant from a spray droplet applied in the field. The uptake of an active ingredient (AI) takes place via the barrier-forming cuticular membrane, which is the outermost layer of the plant, separating it from the surrounding environment. Formulations are usually used which, in addition to the AI, also contain stabilizers and adjuvants. Adjuvants can either have surface-active properties or they act directly as barrier-modifying agents. The latter are grouped in the class of accelerating adjuvants, whereby individual variants may also have surface-active properties. The uptake of a pesticide from a spray droplet depends essentially on its permeability through the cuticular barrier. Permeability defines a combined parameter, which is the product of AI mobility and AI solubility within the cuticle. In recent decades, several tools have been developed that allowed the determination of individual parameters of organic compound penetration across the cuticular membrane. Nevertheless, earlier studies showed that mainly cuticular waxes are the barrier-determining component of the cuticular membrane and additionally, it was shown that mainly the very-long-chain aliphatic compounds (VLCAs) are responsible for establishing an effective barrier. However, the barrier-determining role of the individual VLCAs, being classified according to their respective functional groups, is still unknown.
Therefore, the following objectives were pursued and achieved in this work: (1) A new ATR-FTIR-based approach was developed to measure the temperature-dependent real-time diffusion kinetics of organic models for active ingredients (AIs) in paraffin wax, exclusively consisting of very-long chain alkanes. (2) The developed ATR-FTIR approach was applied to determine the diffusion kinetics of self-accelerating adjuvants in cuticular model waxes of different VLCA composition. At the same time, wax-specific changes were recorded in the respective IR spectra, which provided information about the respective wax modification. (3) The ATR-FTIR method was used to characterize the diffusion kinetics, as well as to determine the wax-specific sorption capacities for an AI-modeling organic compound and water in cuticular model waxes after adjuvant treatment. Regarding the individual chemical compositions and structures, conclusions were drawn about the adjuvant-specific modes of action (MoA).
In the first chapter, the ATR-FTIR based approach to determine organic compound diffusion kinetics in paraffin wax was successfully established. The diffusion kinetics of the AI modelling organic compounds heptyl parabene (HPB) and 4-cyanophenol (CNP) were recorded, comprising different lipophilicities and molecular volumes typical for AIs used in pesticide formulations. Derived diffusion coefficients ranged within 10-15 m2 s-1, thus being thoroughly higher than those obtained from previous experiments using an approach solely investigating desorption kinetics in reconstituted cuticular waxes. An ln-linear dependence between the diffusion coefficients and the applied diffusion temperature was demonstrated for the first time in cuticular model wax, from which activation energies were derived. The determined activation energies were 66.2 ± 7.4 kJ mol-1 and 56.4 ± 9.8 kJ mol-1, being in the expected range of already well-founded activation energies required for organic compound diffusion across cuticular membranes, which again confirmed the significant contribution of waxes to the cuticular barrier. Deviations from the assumed Fickian diffusion were attributed to co-occurring water diffusion and apparatus-specific properties.
In the second and third chapter, mainly the diffusion kinetics of accelerating adjuvants in the cuticular model waxes candelilla wax and carnauba wax were investigated, and simultaneously recorded changes in the wax-specific portion of the IR spectrum were interpreted as indications of plasticization. For this purpose, the oil derivative methyl oleate, as well as the organophosphate ester TEHP and three non-ionic monodisperse alcohol ethoxylates (AEs) C12E2, C12E4 and C12E6 were selected. Strong dependence of diffusion on the respective principal components of the mainly aliphatic waxes was demonstrated. The diffusion kinetics of the investigated adjuvants were faster in the n-alkane dominated candelilla wax than in the alkyl ester dominated carnauba wax. Furthermore, the equilibrium absorptions, indicating equilibrium concentrations, were also higher in candelilla wax than in carnauba wax. It was concluded that alkyl ester dominated waxes feature higher resistance to diffusion of accelerating adjuvants than alkane dominated waxes with shorter average chain lengths due to their structural integrity. This was also found either concerning candelilla/policosanol (n-alcohol) or candelilla/rice bran wax (alkyl-esters) blends: with increasing alcohol concentration, the barrier function was decreased, whereas it was increased with increasing alkyl ester concentration. However, due to the high variability of the individual diffusion curves, only a trend could be assumed here, but significant differences were not shown. The variability itself was described in terms of fluctuating crystalline arrangements and partial phase separation of the respective wax mixtures, which had inevitable effects on the adjuvant diffusion. However, diffusion kinetics also strongly depended on the studied adjuvants. Significantly slower methyl oleate diffusion accompanied by a less pronounced reduction in orthorhombic crystallinity was found in carnauba wax than in candelilla wax, whereas TEHP diffusion was significantly less dependent on the respective wax structure and therefore induced considerable plasticization in both waxes. Of particular interest was the AE diffusion into both waxes. Differences in diffusion kinetics were also found here between candelilla blends and carnauba wax. However, these depended equally on the degree of ethoxylation of the respective AEs. The lipophilic C12E2 showed approximately Fickian diffusion kinetics in both waxes, accompanied by a drastic reduction in orthorhombic crystallinity, especially in candelilla wax, whereas the more hydrophilic C12E6 showed significantly retarded diffusion kinetics associated with a smaller effect on orthorhombic crystallinity. The individual diffusion kinetics of the investigated adjuvants sometimes showed drastic deviations from the Fickian diffusion model, indicating a self-accelerating effect. Hence, adjuvant diffusion kinetics were accompanied by a distinct initial lag phase, indicating a critical concentration in the wax necessary for effective penetration, leading to sigmoidal rather than to exponential diffusion kinetics.
The last chapter dealt with the adjuvant-affected diffusion of the AI modelling CNP in candelilla and carnauba wax. Using ATR-FTIR, diffusion kinetics were recorded after adjuvant treatment, all of which were fully explicable based on the Fickian model, with high diffusion coefficients ranging from 10-14 to 10-13 m2 s-1. It is obvious that the diffusion coefficients presented in this work consistently demonstrated plasticization induced accelerated CNP mobilities. Furthermore, CNP equilibrium concentrations were derived, from which partition- and permeability coefficients could be determined. Significant differences between diffusion coefficients (mobility) and partition coefficients (solubility) were found on the one hand depending on the respective waxes, and on the other hand depending on treatment with respective adjuvants. Mobility was higher in candelilla wax than in carnauba wax only after methyl oleate treatment. Treatment with TEHP and AEs resulted in higher CNP mobility in the more polar alkyl ester dominated carnauba wax. The partition coefficients, on the other hand, were significantly lower after methyl oleate treatment in both candelilla and carnauba wax as followed by TEHP or AE treatment. Models were designed for the CNP penetration mode considering the respective adjuvants in both investigated waxes. Co-penetrating water, which is the main ingredient of spray formulations applied in the field, was likely the reason for the drastic differences in adjuvant efficacy. Especially the investigated AEs favored an enormous water uptake in both waxes with increasing ethoxylation level. Surprisingly, this effect was also found for the lipophilic TEHP in both waxes. This led to the assumption that the AI permeability is not exclusively determined by adjuvant induced plasticization, but also depends on a “secondary plasticization”, induced by adjuvant-attracted co-penetrating water, consequently leading to swelling and drastic destabilization of the crystalline wax structure.
The successful establishment of the presented ATR-FTIR method represents a milestone for the study of adjuvant and AI diffusion kinetics in cuticular waxes. In particular, the simultaneously detectable wax modification and, moreover, the determinable water uptake form a perfect basis to establish the ATR-FTIR system as a universal screening tool for wax-adjuvants-AI-water interaction in crop protection science.
Photosynthetic plants have a remarkable ability to modify their metabolism and development according to ever changing environmental conditions. The root system displays continuous growth of the primary root and formation of lateral roots enabling efficient water and nutrient uptake and anchorage of the plant in soil. With regard to lateral roots, development is post-embryonic, originating from the pericycle of the primary root. Coordinated activity of several molecular signalling pathways controlled by the hormone auxin is important throughout all stages of lateral root development.At first, two adjacent Xylem Pole Pericycle (XPP) cells are activated and the nuclei of these cells migrate towards a common cell wall.This is followed by XPP cells acquiring volume thus swelling up.The XPP cells then undergo anticlinal cell division, followed by a series of periclinal and anticlinal divisions,leading to lateral root primordia.These break through the radial cell layers and emerge out the primary root.
Although root system plasticity is well-described in response to environmental cues such as ion nutrition in the soil, little is known on how root development is shaped according to the endogenous energy status of the plant.In this study, we were able to connect limited perturbations in photosynthetic energy supply to lateral root development.We established two experimental systems – treatment with low light and unexpected darkness which led to short-term energy imbalance in the plant.These short perturbations administered, showed an increase in the emerged lateral root density and decrease in root hexose availability and activation of the low energy marker gene ASN1 (ASPARAGINE SYNTHETASE 1).Although not demonstrated, presumably, these disturbances in the plant energy homeo-stasis activates SnRK1 (SNF1 RELATED KINASE 1),an evolutionary conserved kinase mediat-ing metabolic and transcriptional responses towards low energy conditions. In A. thaliana, two catalytic α-subunits of this kinase (SnRK1.α1 and SnRK1.α2) are functionally active and form ternary complexes with the regulatory β- and γ- subunits. Whereas unexpected darkness results in an increase in emerged lateral root density, the snrk1.α1 loss-of-function mutant displayed decrease in emerged lateral root density. As this effect is not that pronounced in the snrk1.α2 loss-of-function mutant, the α1 catalytic subunit is important for the observed lateral root phenotype under short-term energy perturbations. Moreover, root expression patterns of SnRK1.α1:GFP supports a role of this catalytic subunit in lateral root development. Furthermore, the lateral root response during short-term perturbations requires the SnRK1 downstream transcriptional regulator bZIP63 (BASIC LEU-CINE ZIPPER 63), as demonstrated here by a loss-of-function approach. Phenotypic studies showed that in comparison to wild-type, bzip63 mutants displayed decreased lateral root density upon low-light and unexpected darkness conditions. Previous work has demonstrat-ed that SnRK1 directly phosphorylates bZIP63 at three serine residues. Alanine-exchange mutants of the SnRK1 dependent bZIP63 phosphorylation sites behave similarly to bzip63 loss-of-function mutants and do not display increased lateral root density upon short-term unexpected darkness. This data strongly supports an impact of SnRK1-bZIP63 signalling in mediating the observed lateral root density phenotype. Plants expressing a bZIP63:YFP fu-sion protein showed specific localization patterns in primary root and in all developmental stages of the lateral root. bzip63 loss-of-function mutant lines displayed reduced early stage lateral root initiation events under unexpected darkness as demonstrated by Differen-tial Interference Contrast microscopy (DIC) and the use of a GATA23 reporter line. This data supports a role of bZIP63 in early lateral root initiation.
Next, by employing Chromatin Immunoprecitation (ChIP) sequencing, we were able to iden-tify global binding targets of bZIP63, including the auxin-regulated transcription factor (TF) ARF19 (AUXIN RESPONSE FACTOR 19), a well-described central regulator of lateral root development. Additional ChIP experiments confirmed direct binding of bZIP63 to an ARF19 promoter region harboring a G-Box cis-element, a well-established bZIP63 binding site. We also observed that short-term energy perturbation upon unexpected darkness induced tran-scription of ARF19, which was impaired in the bzip63 loss-of-function mutant. These results propose that bZIP63 mediates lateral root development under short-term energy perturba-tion via ARF19.
In conclusion, this study provides a novel mechanistic link between energy homeostasis and plant development. By employing reverse genetics, confocal imaging and high-throughput sequencing strategies, we were able to propose a SnRK1-bZIP63-ARF19 signalling module in integrating energy signalling into lateral root developmental programs.
Optogenetics became successful in neuroscience with Channelrhodopsin-2 (ChR2), a light-gated cation channel from the green alga Chlamydomonas reinhardtii, as an easy applicable tool. The success of ChR2 inspired the development of various photosensory proteins as powerful actuators for optogenetic manipulation of biological activity. However, the current optogenetic toolbox is still not perfect and further improvements are desirable. In my thesis, I engineered and characterized several different optogenetic tools with new features.
(i) Although ChR2 is the most often used optogenetic actuator, its single-channel conductance and its Ca2+ permeability are relatively low. ChR2 variants with increased Ca2+ conductance were described recently but a further increase seemed possible. In addition, the H+ conductance of ChR2 may lead to cellular acidification and unintended pH-related side effects upon prolonged illumination. Through rational design, I developed several improved ChR2 variants with larger photocurrent, higher cation selectivity, and lower H+ conductance.
(ii) The light-activated inward chloride pump NpHR is a widely used optogenetic tool for neural silencing. However, pronounced inactivation upon long time illumination constrains its application for long-lasting neural inhibition. I found that the deprotonation of the Schiff base underlies the inactivation of NpHR. Through systematically exploring optimized illumination schemes, I found illumination with blue light alone could profoundly increase the temporal stability of the NpHR-mediated photocurrent. A combination of green and violet light eliminates the inactivation effect, similar to blue light, but leading to a higher photocurrent and therefore better light-induced inhibition.
(iii) Photoactivated adenylyl cyclases (PACs) were shown to be useful for light-manipulation of cellular cAMP levels. I developed a convenient in-vitro assay for soluble PACs that allows their reliable characterization. Comparison of different PACs revealed that bPAC from Beggiatoa is the best optogenetic tool for cAMP manipulation, due to its high efficiency and small size. However, a residual activity of bPAC in the dark is unwanted and the cytosolic localization prevents subcellular precise cAMP manipulation. I therefore introduced point mutations into bPAC to reduce its dark activity. Interestingly, I found that membrane targeting of bPAC with different linkers can remarkably alter its activity, in addition to its localization. Taken together, a set of PACs with different activity and subcellular localization were engineered for selection based on the intended usage. The membrane-bound PM-bPAC 2.0 with reduced dark activity is well-tolerated by hippocampal neurons and reliably evokes a transient photocurrent, when co-expression with a CNG channel.
(iv) Bidirectional manipulation of cell activity with light of different wavelengths is of great importance in dissecting neural networks in the brain. Selection of optimal tool pairs is the first and most important step for dual-color optogenetics. Through N- and C-terminal modifications, an improved ChR variant (i.e. vf-Chrimson 2.0) was engineered and selected as the red light-controlled actuator for excitation. Detailed comparison of three two-component potassium channels, composed of bPAC and the cAMP-activated potassium channel SthK, revealed the superior properties of SthK-bP. Combining vf-Chrimson 2.0 and improved SthK-bP “SthK(TV418)-bP” could reliably induce depolarization by red light and hyperpolarization by blue light. A residual tiny crosstalk between vf-Chrimson 2.0 and SthK(TV418)-bP, when applying blue light, can be minimized to a negligible level by applying light pulses or simply lowering the blue
light intensity.
Agrochemicals like systemic active ingredients (AI) need to penetrate the outermost barrier of the plant, known as the plant cuticle, to reach its right target site. Therefore, adjuvants are added to provide precise and efficient biodelivery by i.a. modifying the cuticular barrier and increasing the AI diffusion. This modification process is depicted as plasticization of the cuticular wax which mainly consists of very long-chain aliphatic (VLCA) and cyclic compounds. Plasticization of cuticular waxes is pictured as an increase of amorphous domains and/or a decrease of crystalline fractions, but comprehensive, experimental proof is lacking to date. Hence, the objective of this thesis was to i) elucidate the permeation barrier of the plant cuticle to AIs in terms of the different wax fractions and ii) holistically investigate the modification of this barrier using selected oil and surface active adjuvants, an aliphatic leaf wax and an artificial model wax. Therefore, the oil adjuvant methyl oleate (MeO) and other oil derivatives like methyl linolenate (MeLin), methyl stearate (MeSt) and oleic acid (OA) were selected. Three monodisperse, non-ionic alcohol ethoxylates with increasing ethylene oxide monomer (EO) number (C10E2, C10E5, C10E8) were chosen as representatives of the group of surface active agents (surfactants). Both adjuvant classes are commonly used as formulation aids for agrochemicals which are known for its penetration enhancing effect. The aliphatic leaf wax of Schefflera elegantissima was selected, as well as a model wax comprising the four most abundant cuticular wax compounds of this species. Permeation, transpiration and penetration studies were conducted using enzymatically isolated cuticles of Prunus laurocerasus and Garcinia xanthochymus.
Cuticular permeability to the three organic solutes theobromine, caffeine and azoxystrobin differing in lipophilicity was measured using a steady-state two-chamber system separated by the isolated leaf cuticles of the evergreen species P. laurocerasus and G. xanthochymus. Treating the isolated cuticles with methanol selectively removed the cyclic fraction, and membrane permeability to the organic compounds was not altered. In contrast, fully dewaxing the membranes using chloroform resulted in a statistically significant increase in permeance for all compounds and species, except caffeine with cuticles of G. xanthochymus due to a matrix-specific influence on the semi-hydrophilic compound. Crystalline regions may reduce the accessibility to the lipophilic pathway across the waxes and also block hydrophilic domains in the cuticle.
Knowing that the aliphatic wax fraction builds the cuticular diffusion barrier, the influence of the adjuvants on the phase behaviour of an aliphatic cuticular wax as well as the influence on the cuticular penetration of AIs were investigated. Differential scanning calorimetry (DSC) and Fourier-transform infrared spectroscopy (FTIR) were selected to investigate the phase behaviour and thus possible plasticization of pure Schefflera elegantissima leaf wax, its artificial model wax comprising the four most abundant compounds (n-nonacosane, n-hentriacontane, 1-triacontanol and 1-dotriacontanol) and wax adjuvant mixtures. DSC thermograms showed a shift of the melting ranges to lower temperatures and decreased absolute values of the total enthalpy of transition (EOT) for all adjuvant leaf wax blends at 50 % (w/w) adjuvant proportion. The highest decrease was found for C10E2 followed by MeO > OA and C10E8 > MeLin > MeSt. The aliphatic crystallinity determined by FTIR yielded declined values for the leaf and the artificial wax with 50 % MeO. All other adjuvant leaf wax blends did not show a significant decrease of crystallinity. As it is assumed that the cuticular wax is formed by crystalline domains which consist of aliphatic hydrocarbon chains and an amorphous fraction comprising aliphatic chain ends and functional groups, the plasticizers are depicted as wax disruptors influencing amorphization and/or crystallization. The adjuvants can increase crystalline domains using the aliphatic tail whereas their more hydrophilic head is embedded in the amorphous wax fraction. DSC and FTIR showed similar trends using the leaf wax and the model wax in combination with the adjuvants.
In general, cuticular transpiration increased after adding the pure adjuvants to the surface of isolated cuticles or leaf envelopes. As waxes build the cuticular permeation barrier not only to AIs but also to water, the adjuvant wax interaction might affect the cuticular barrier properties leading to increased transpiration. Direct evidence for increased AI penetration with the adjuvants was given using isolated cuticles of P. laurocerasus in combination with the non-steady-state setup simulation of foliar penetration (SOFP) and caffeine at relative humidity levels (RH) of 30, 50 and 80 %. The increase in caffeine penetration was much more pronounced using C10E5 and C10E8 than MeO but always independent of RH. Only C10E2 exhibited an increased penetration enhancing effect positively related to RH. The role of the molecular structure of adjuvants in terms of humectant and plasticizer properties are discussed.
Hence, the current work shows for the first time that the cuticular permeation barrier is associated with the VLCAs rather than the cyclic fraction and that adjuvants structurally influence this barrier resulting in penetration enhancing effects. Additionally, this work demonstrates that an artificial model wax is feasible to mimic the wax adjuvant interaction in conformity with a leaf wax, making it feasible for in-vitro experiments on a larger scale (e.g. screenings). This provides valuable knowledge about the cuticular barrier modification to enhance AI penetration which is a crucial factor concerning the optimization of AI formulations in agrochemistry.
Xylem hydraulic safety and efficiency are key traits determining tree fitness in a warmer and drier world. While numerous plant hydraulic studies have focused on branches, our understanding of root hydraulic functioning remains limited, although roots control water uptake, influence stomatal regulation and have commonly been considered as the most vulnerable organ along the hydraulic pathway.
We investigated 11 traits related to xylem safety and efficiency along the hydraulic pathway in four temperate broad-leaved tree species.
Continuous vessel tapering from coarse roots to stems and branches caused considerable reduction in hydraulic efficiency. Wood density was always lowest in roots, but did not decline linearly along the flow path. In contrast, xylem embolism resistance (P50) did not differ significantly between roots and branches, except for one species. The limited variation in xylem safety between organs did not adequately reflect the corresponding reductions in vessel diameter (by ~70%) and hydraulic efficiency (by ~85%). Although we did not observe any trade-off between xylem safety and specific conductivity, vessel diameter, vessel lumen fraction and wood density were related to embolism resistance, both across and partly within organs.
We conclude that coarse roots are not highly vulnerable to xylem embolism as commonly believed, indicating that hydraulic failure during soil drying might be restricted to fine roots.
The negative impact of juvenile undernourishment on adult behavior has been well reported for vertebrates, but relatively little is known about invertebrates. In honeybees, nutrition has long been known to affect task performance and timing of behavioral transitions. Whether and how a dietary restriction during larval development affects the task performance of adult honeybees is largely unknown. We raised honeybees in-vitro, varying the amount of a standardized diet (150 µl, 160 µl, 180 µl in total). Emerging adults were marked and inserted into established colonies. Behavioral performance of nurse bees and foragers was investigated and physiological factors known to be involved in the regulation of social organization were quantified. Surprisingly, adult honeybees raised under different feeding regimes did not differ in any of the behaviors observed. No differences were observed in physiological parameters apart from weight. Honeybees were lighter when undernourished (150 µl), while they were heavier under the overfed treatment (180 µl) compared to the control group raised under a normal diet (160 µl). These data suggest that dietary restrictions during larval development do not affect task performance or physiology in this social insect despite producing clear effects on adult weight. We speculate that possible effects of larval undernourishment might be compensated during the early period of adult life.
The recently observed consistent loss of β-diversity across ecosystems indicates increasingly homogeneous communities in patches of landscapes, mainly caused by increasing land-use intensity. Biodiversity is related to numerous ecosystem functions and stability. Therefore, decreasing β-diversity is also expected to reduce multifunctionality. To assess the impact of homogenization and to develop guidelines to reverse its potentially negative effects, we combine expertise from forest science, ecology, remote sensing, chemical ecology and statistics in a collaborative and experimental β-diversity approach. Specifically, we will address the question whether the Enhancement of Structural Beta Complexity (ESBC) in forests by silviculture or natural disturbances will increase biodiversity and multifunctionality in formerly homogeneously structured production forests. Our approach will identify potential mechanisms behind observed homogenization-diversity-relationships and show how these translate into effects on multifunctionality. At eleven forest sites throughout Germany, we selected two districts as two types of small ‘forest landscapes’. In one of these two districts, we established ESBC treatments (nine differently treated 50x50 m patches with a focus on canopy cover and deadwood features). In the second, the control district, we will establish nine patches without ESBC. By a comprehensive sampling, we will monitor 18 taxonomic groups and measure 21 ecosystem functions, including key functions in temperate forests, on all patches. The statistical framework will allow a comprehensive biodiversity assessment by quantifying the different aspects of multitrophic biodiversity (taxonomical, functional and phylogenetic diversity) on different levels of biodiversity (α-, β-, γ-diversity). To combine overall diversity, we will apply the concept of multidiversity across the 18 taxa. We will use and develop new approaches for quantification and partitioning of multifunctionality at α- and β- scales. Overall, our study will herald a new research avenue, namely by experimentally describing the link between β-diversity and multifunctionality. Furthermore, we will help to develop guidelines for improved silvicultural concepts and concepts for management of natural disturbances in temperate forests reversing past homogenization effects.
Plants do not have neurons but operate transmembrane ion channels and can get electrical excited by physical and chemical clues. Among them the Venus flytrap is characterized by its peculiar hapto-electric signaling. When insects collide with trigger hairs emerging the trap inner surface, the mechanical stimulus within the mechanosensory organ is translated into a calcium signal and an action potential (AP). Here we asked how the Ca\(^{2+}\) wave and AP is initiated in the trigger hair and how it is feed into systemic trap calcium-electrical networks. When Dionaea muscipula trigger hairs matures and develop hapto-electric excitability the mechanosensitive anion channel DmMSL10/FLYC1 and voltage dependent SKOR type Shaker K\(^{+}\) channel are expressed in the sheering stress sensitive podium. The podium of the trigger hair is interface to the flytrap’s prey capture and processing networks. In the excitable state touch stimulation of the trigger hair evokes a rise in the podium Ca2+ first and before the calcium signal together with an action potential travel all over the trap surface. In search for podium ion channels and pumps mediating touch induced Ca\(^{2+}\) transients, we, in mature trigger hairs firing fast Ca\(^{2+}\) signals and APs, found OSCA1.7 and GLR3.6 type Ca\(^{2+}\) channels and ACA2/10 Ca\(^{2+}\) pumps specifically expressed in the podium. Like trigger hair stimulation, glutamate application to the trap directly evoked a propagating Ca\(^{2+}\) and electrical event. Given that anesthetics affect K\(^+\) channels and glutamate receptors in the animal system we exposed flytraps to an ether atmosphere. As result propagation of touch and glutamate induced Ca\(^{2+}\) and AP long-distance signaling got suppressed, while the trap completely recovered excitability when ether was replaced by fresh air. In line with ether targeting a calcium channel addressing a Ca\(^{2+}\) activated anion channel the AP amplitude declined before the electrical signal ceased completely. Ether in the mechanosensory organ did neither prevent the touch induction of a calcium signal nor this post stimulus decay. This finding indicates that ether prevents the touch activated, glr3.6 expressing base of the trigger hair to excite the capture organ.
Xylem embolism resistance has been identified as a key trait with a causal relation to drought-induced tree mortality, but not much is known about its intra-specific trait variability (ITV) in dependence on environmental variation. We measured xylem safety and efficiency in 300 European beech (Fagus sylvatica L.) trees across 30 sites in Central Europe, covering a precipitation reduction from 886 to 522 mm year−1. A broad range of variables that might affect embolism resistance in mature trees, including climatic and soil water availability, competition, and branch age, were examined. The average P50 value varied by up to 1 MPa between sites. Neither climatic aridity nor structural variables had a significant influence on P50. However, P50 was less negative for trees with a higher soil water storage capacity, and positively related to branch age, while specific conductivity (Ks) was not significantly associated with either of these variables. The greatest part of the ITV for xylem safety and efficiency was attributed to random variability within populations. We conclude that the influence of site water availability on P50 and Ks is low in European beech, and that the high degree of within-population variability for P50, partly due to variation in branch age, hampers the identification of a clear environmental signal.
Pivotal barrier properties of the hydrophobic plant cuticle covering aerial plant surfaces depend on its physicochemical composition. Among plant species and organs, compounds of this boundary layer between the plant interior and the environment vary considerably but cuticle-related studies comparing different organs from the same plant species are still scarce. Thus, this study focused on the cuticle profiles of Physalis peruviana, Physalis ixocarpa, Alkekengi officinarum, and Nicandra physalodes species. Inflated fruiting calyces enveloping fruits make Physalis, Alkekengi, and Nicandra highly recognizable genera among the Solanoideae subfamily. Although the inflation of fruiting calyces is well discussed in the literature still little is known about their post-floral functionalities. Cuticular composition, surface structure, and barrier function were examined and compared in fully expanded amphistomatous leaves, ripe astomatous fruits, and fully inflated hypostomatous fruiting calyces. Species- and organ-specific abundances of non-glandular and glandular trichomes revealed high structural diversity, covering not only abaxial and adaxial leaf surfaces but also fruiting calyx surfaces, whereas fruits were glabrous. Cuticular waxes, which limit non-stomatal transpiration, ranged from <1 μg cm\(^{−2}\) on P. peruviana fruiting calyces and N. physalodes fruits to 22 μg cm\(^{−2}\) on P. peruviana fruits. Very-long-chain aliphatic compounds, notably n-alkanes, iso-, and anteiso-branched alkanes, alkanols, alkanoic acids, and alkyl esters, dominated the cuticular wax coverages (≥86%). Diversity of cuticular wax patterns rose from leaves to fruiting calyces and peaked in fruits. The polymeric cutin matrix providing the structural framework for cuticular waxes was determined to range from 81 μg cm\(^{−2}\) for N. physalodes to 571 μg cm\(^{−2}\) for A. officinarum fruits. Cuticular transpiration barriers were highly efficient, with water permeabilities being ≤5 × 10\(^{−5}\) m s\(^{−1}\). Only the cuticular water permeability of N. physalodes fruits was 10 × 10\(^{−5}\) m s\(^{−1}\) leading to their early desiccation and fruits that easily split, whereas P. peruviana, P. ixocarpa, and A. officinarum bore fleshy fruits for extended periods after maturation. Regarding the functional significance, fruiting calyces establish a physicochemical shield that reduces water loss and enables fruit maturation within a protective microclimate, and promotes different seed dispersal strategies among plant species investigated.
Sphingolipid long-chain bases (LCBs) are building blocks for membrane-localized sphingolipids, and are involved in signal transduction pathways in plants. Elevated LCB levels are associated with the induction of programmed cell death and pathogen-derived toxin-induced cell death. Therefore, levels of free LCBs can determine survival of plant cells. To elucidate the contribution of metabolic pathways regulating high LCB levels, we applied the deuterium-labeled LCB D-erythro-sphinganine-d7 (D7-d18:0), the first LCB in sphingolipid biosynthesis, to Arabidopsis leaves and quantified labeled LCBs, LCB phosphates (LCB-Ps), and 14 abundant ceramide (Cer) species over time. We show that LCB D7-d18:0 is rapidly converted into the LCBs d18:0P, t18:0, and t18:0P. Deuterium-labeled ceramides were less abundant, but increased over time, with the highest levels detected for Cer(d18:0/16:0), Cer(d18:0/24:0), Cer(t18:0/16:0), and Cer(t18:0/22:0). A more than 50-fold increase of LCB-P levels after leaf incubation in LCB D7-d18:0 indicated that degradation of LCBs via LCB-Ps is important, and we hypothesized that LCB-P degradation could be a rate-limiting step to reduce high levels of LCBs. To functionally test this hypothesis, we constructed a transgenic line with dihydrosphingosine-1-phosphate lyase 1 (DPL1) under control of an inducible promotor. Higher expression of DPL1 significantly reduced elevated LCB-P and LCB levels induced by Fumonisin B1, and rendered plants more resistant against this fungal toxin. Taken together, we provide quantitative data on the contribution of major enzymatic pathways to reduce high LCB levels, which can trigger cell death. Specifically, we provide functional evidence that DPL1 can be a rate-limiting step in regulating high LCB levels.
For the treatment of large bone defects, the commonly used technique of autologous bone grafting presents several drawbacks and limitations. With the discovery of the bone-inducing capabilities of bone morphogenetic protein 2 (BMP2), several delivery techniques were developed and translated to clinical applications. Implantation of scaffolds containing adsorbed BMP2 showed promising results. However, off-label use of this protein-scaffold combination caused severe complications due to an uncontrolled release of the growth factor, which has to be applied in supraphysiological doses in order to induce bone formation. Here, we propose an alternative strategy that focuses on the covalent immobilization of an engineered BMP2 variant to biocompatible scaffolds. The new BMP2 variant harbors an artificial amino acid with a specific functional group, allowing a site-directed covalent scaffold functionalization. The introduced artificial amino acid does not alter BMP2′s bioactivity in vitro. When applied in vivo, the covalently coupled BMP2 variant induces the formation of bone tissue characterized by a structurally different morphology compared to that induced by the same scaffold containing ab-/adsorbed wild-type BMP2. Our results clearly show that this innovative technique comprises translational potential for the development of novel osteoinductive materials, improving safety for patients and reducing costs.
Pflanzen müssen sich während der Samenkeimung und Keimlingsentwicklung über eingelagerte Speicherstoffe heterotroph versorgen, bis sie, nach Etablierung ihres Photosyntheseapparats, einen autotrophen Lebensstil führen können.
Diese Arbeit geht von der Hypothese aus, dass der evolutionär konservierten zentral-metabolischen Kinase Snf1-RELATED PROTEIN KINASE 1 (SnRK1) eine besondere Rolle bei der Mobilisierung von Speicherstoffen während der Keimlingsentwicklung zukommt. Während die Bedeutung von SnRK1 als zentraler Regulator katabolischer Prozesse unter Energiemangel- und Stresssituationen bereits gezeigt wurde, war die Funktion von SnRK1 im Zusammenhang mit der Samenkeimung weitgehend ungeklärt. In dieser Arbeit konnte erstmals gezeigt werden, dass SnRK1 in Arabidopsis die Mobilisierung und Degradation von Speicherstoffen, insbesondere von Triacylglyceride (TAGs), Samenspeicherproteinen und Aminosäuren, steuert. Sowohl Studien zur Lokalisation von SnRK1:GFP-Fusionsproteinen als auch Kinaseaktivitätsassays unterstützen eine mögliche Funktion von SnRK1 während der Keimlingsentwicklung. Eine induzierbare snrk1-knockdown Mutante zeigt neben einem eingeschränkten Wurzel- und Hypokotylwachstum auch keine Ausbildung eines Photosyntheseapparats, was die zentrale Rolle der SnRK1 in diesem frühen Entwicklungsstadium untermauert. Durch Fütterungsexperimente mit Glukose konnte der Phänotyp einer snrk1 -Mutante in Keimlingen gerettet werden. Dies zeigt, dass der metabolische Block durch externe Gabe von Kohlenhydraten umgangen werden kann. Die zentrale Funktion von SnRK1 ist folgich der Abbau von Speicherstoffen und keine allgemeine Deregulation des pflanzlichen Stoffwechsels. Durch massenspektrometrische Untersuchungen von Keimlingen des Wildtyps und der snrk1-Mutante konnte gezeigt werden, dass TAGs in der Mutante in der spä- ten Keimlingsentwicklung ab Tag 4 langsamer abgebaut werden als im Wildtyp. Ebenso werden Samenspeicherproteine in der Mutante langsamer degradiert, wodurch die Verfügbarkeit von freien Aminosäuren in geringer ist. Entgegen der allgemeinen Annahme konnte gezeigt werden, dass während der Keimlingsentwicklung zumindest in Arabidopsis, einer ölhaltigen Pflanze, zunächst Kohlenhydrate in Form von Saccharose abgebaut werden, bevor die Degradation von TAGs und Aminosäuren beginnt. Diese Abbauprodukte können dann der Glukoneogenese zugeführt werden um daraus Glukose herzustellen. Mittels Transkriptom-Analysen konnten zentrale SnRK1-abhängige Gene in der Speicherstoffmobilisierung von TAG, beispielsweise PEROXISOMAL NAD-MALATE DEHYDROGENASE 2 (PMDH2) und ACYL-CoA-OXIDASE 4 (ACX4), und Aminosäuren identifiziert werden. Somit wurde ein Mechanismus der SnRK1-abhängigen Genregulation während der Samenkeimung in Arabidopsis gefunden. Bei der Degradation von Aminosäuren wird die cytosolische PYRUVATE ORTHOPHOSPHATE DIKINASE (cyPPDK), ein Schlüsselenzym beim Abbau bestimmter Aminosäuren und bei der Glukoneogenese, SnRK1-abhängig transkriptionell reguliert. Durch Koregulation konnte der Transkriptionsfaktor bZIP63 (BASIC LEUCINE ZIPPER 63) gefunden werden, dessen Transkription ebenfalls SnRK1-abhängig reguliert wird. Außerdem konnte die Transkription von cyPPDK in bzip63-Mutanten nur noch sehr schwach induziert werden. In Protoplasten konnte der cyPPDK-Promotor durch Aktivierungsexperimente mit bZIP63 und SnRK1α1 induziert werden. Durch Mutationskartierung und Chromatin-Immunopräzipitation (ChIP)PCR konnte mehrfach eine direkte Bindung von bZIP63 an den cyPPDK-Promotor nachgewiesen werden. Zusammenfassend ergibt sich ein mechanistisches Arbeitsmodell, in dem bZIP63 durch SnRK1 phosphoryliert wird und durch Bindung an regulatorische G-Box cis-Elemente im cyPPDK- Promotor dessen Transkription anschaltet. Infolgedessen werden Aminosäuren abgebaut und wird über die Glukoneogenese Glukose aufgebaut. Dieser Mechanismus ist essentiell für die Übergangsphase zwischen heterotropher und autotropher Lebensweise, und trägt dazu bei, die im Samen vorhandenen Ressourcen dem Keimling zum idealen Zeitpunkt zugänglich zu machen. Darüber hinaus werden Gene im Abbau von verzweigtkettigen Aminosäuren ebenfalls durch bZIP63 reguliert. Dabei wird dem Keimling Energie in Form von Adenosin-Triphosphat (ATP) zur Verfügung gestellt.
Zusammengefasst zeigen die Ergebnisse dieser Arbeit, dass die Mobilisierung von Speicherstoffen auch während der Keimlingsentwicklung direkt von SnRK1 abhängig ist. Die umfangreichen Datensätze der RNA-Seq-Analysen bieten zudem die Möglichkeit, weitere SnRK1-abhängige Gene der Speichermobilisierung zu identifizieren und somit einem besseren Verständnis der Keimlingsentwicklung beizutragen. Aufgrund der zentralen Bedeutung der SnRK1-Kinase in diesem entscheidenden Entwicklungsschritt ist davon auszugehen, dass diese Erkenntnisse mittelfristig auch für bessere Keimungsraten und somit bessere Erträge in der Landwirtschaft genutzt werden können.
The evolution of the internal water transport system was a prerequisite for high plant productivity. In times of climate change, understanding the dependency of juvenile growth on xylem hydraulic physiology is therefore of high importance. Here, we explored various wood anatomical, hydraulic, and leaf morphological traits related to hydraulic safety and efficiency in three temperate broadleaved tree species (Acer pseudoplatanus, Betula pendula, and Sorbus aucuparia). We took advantage of a severe natural heat wave that resulted in different climatic growing conditions for even-aged plants from the same seed source growing inside a greenhouse and outside. Inside the greenhouse, the daily maximum vapour pressure deficit was on average 36% higher than outside during the growing seasons. Because of the higher atmospheric moisture stress, the biomass production differed up to 5.6-fold between both groups. Except for one species, a high productivity was associated with a high hydraulic efficiency caused by large xylem vessels and a large, supported leaf area. Although no safety-efficiency trade-off was observed, productivity was significantly related to P\(_{50}\) in two of the tree species but without revealing any clear pattern. A considerable plasticity in given traits was observed between both groups, with safety-related traits being more static while efficiency-related traits revealed a higher intra-specific plasticity. This was associated with other wood anatomical and leaf morphological adjustments. We confirm that a high hydraulic efficiency seems to be a prerequisite for a high biomass production, while our controversial results on the growth–xylem safety relationship confirm that safety-efficiency traits are decoupled and that their relationship with juvenile growth and water regime is species-specific.
Die Fähigkeit sich an die Rotation der Erde und den daraus resultierenden Tag- und Nacht-Rhythmus anzupassen, basiert auf einer komplexen Regulation verschiedener physiologischer Prozesse. Auf molekularer Ebene liegt diesen Prozessen eine Orchestration von Uhr-Genen zugrunde – auch als innere Uhr bezeichnet – die einen aktivierenden bzw. reprimierenden Einfluss auf die Expression einer Vielzahl weiterer Gene hat. Ausgehend von dieser Regulation lassen sich auf unterschiedlichsten Ebenen tageszeitabhängige, wiederkehrende Rhythmen beobachten.
Während diese wiederkehrenden Rhythmen auf einigen Ebenen bereits gut erforscht und beschrieben sind, gibt es weitere Ebenen wie den Metabolismus, über die das Wissen bisher noch begrenzt ist.
So handelt es sich bei Drosophila beispielsweise um den Organismus, dessen innere Uhr auf molekularer Ebene wahrscheinlich mit am besten charakterisiert ist. Dennoch ist bisher nur wenig über Stoffklassen bekannt, deren Metabolismus durch die innere Uhr kontrolliert wird.
Zwar konnte bereits gezeigt werden, dass sich eine gestörte innere Uhr auf die Anlage der Energiespeicher auswirkt, inwiefern dies allerdings einen Einfluss auf dem intermediären Stoffwechsel hat, blieb bisher weitgehend unerforscht. Auch die Frage, welche Metaboliten wiederkehrende, tageszeitabhängige Rhythmen aufweisen, wurde bisher nur für eine begrenzte Anzahl Metaboliten untersucht.
Bei der hier durchgeführten Arbeit wurden deshalb zunächst die globalen Metabolit-Profile von Fliegen mit einer auf molekularer Ebene gestörten inneren Uhr (per01) mit Fliegen, die über eine funktionale Uhr verfügen (CantonS), zu zwei Zeitpunkten verglichen. Um die Anzahl der zeitgleich untersuchten Gewebe und somit die Komplexität der Probe zu reduzieren, wurden hierfür die Köpfe von den Körpern der Fliegen getrennt und separat analysiert. Beide Körperteile wurden sowohl auf kleine hydrophile als auch auf hydrophobe Metaboliten hin mittels UPLC-ESI-qTOF-MS untersucht. Die anschließend durchgeführte, statistische Analyse brachte hervor, dass sich Unterschiede zwischen den beiden Fliegenlinien besonders in den Spiegeln der essentiellen Aminosäuren, den Kynureninen, den Pterinaten sowie den Spiegeln der Glycero(phospho)lipiden und Fettsäureester zeigten. Bei den Lipiden zeigte sich, dass die Auswirkungen weniger ausgeprägt für die Anlage der Speicher- und Strukturlipide als für die Intermediate des Lipidabbaus, die Diacylglycerole (DAGs) sowie die Acylcarnitine (ACs), waren.
Um zu bestätigen, dass die inneren Uhr tatsächlich einen regulatorischen Einfluss auf die ausgemachten Stoffwechselwege hat, wurden anschließend die Spiegel aller Mitglieder darauf hin untersucht, ob diese wiederkehrende, tageszeitabhängige Schwankungen aufweisen. Hierfür wurden Proben alle zwei Stunden über drei aufeinanderfolgende Tage genommen und analysiert, bevor mittels JTK_CYCLE eine statistische Analyse der Daten durchgeführt und die Metaboliten herausgefiltert wurden, die ein rhythmisches Verhalten bei einer Periodenlänge von 24h zeigten. Hierbei bestätigte sich, dass besonders die Mitglieder des intermediären Lipidmetablismus hiervon betroffen waren. So konnten zwar auch für einige Aminosäuren robuste Rhythmen ausgemacht werden, besonders ausgeprägt waren diese jedoch erneut bei den DAGs und den ACs. Die abschließende Untersuchung letzterer unter Freilaufbedingungen (DD) sowie in per01 brachte hervor, dass die ausgemachten Rhythmen unter diesen Bedingungen entweder nicht mehr detektiert werden konnten oder deutlich abgeschwächt vorlagen. Lediglich zwei kurzkettige ACs zeigten auch unter DD-Bedingungen statistisch signifikante Rhythmen in ihren Spiegeln. Dies spricht dafür, dass neben der Regulation durch die innere Uhr weitere Faktoren, wie beispielsweise das Licht, eine entscheidende Rolle zu spielen scheinen.
A part of the plant kingdom consists of a variety of carnivorous plants. Some trap their prey
using sticky leaves, others have pitfall traps where prey cannot escape once it has fallen inside.
A rare trap type is the snap-trap: it appears only twice in the plant kingdom, in the genera
Aldrovanda and Dionaea. Even Charles Darwin himself described Dionaea muscipula, the
Venus flytrap, with the following words “This plant, commonly called Venus' fly-trap, from the
rapidity and force of its movements, is one of the most wonderful in the world”. For a long
time now, the mechanisms of Dionaea’s prey recognition, capture and utilization are of
interest for scientists and have been studied intensively.
Dionaea presents itself with traps wide-open, ready to catch insects upon contact. For this,
the insect has to touch the trigger hairs of the opened trap twice within about 20-30 seconds.
Once the prey is trapped, the trap lobes close tight, forming a hermetically sealed “green
stomach”.
Until lately, there was only limited knowledge about the molecular and hormonal mechanisms
which lead to prey capture and excretion of digestive fluids. It is known that the digestion
process is very water-consuming; therefore, the interplay of digestion-inducing and digestion inhibiting
substances was to be analyzed in this work, to elucidate the fine-tuning of the
digestive pathway. Special attention was given to the impact of phytohormones on mRNA
transcript levels of digestion-related proteins after various stimuli as well as their effect on
Dionaea’s physiological responses.
Jasmonic acid (JA) and its isoleucine-conjugated form, JA-Ile, are an important signal in the
jasmonate pathway. In the majority of non-carnivorous plants, jasmonates are critical for the
defense against herbivory and pathogens. In Dionaea, this defense mechanism has been
restructured towards offensive prey catching. One question in this work was how the
frequency of trigger hair bendings is related to the formation of jasmonates and the induction
of the digestion process. Upon contact of a prey with the trigger hairs in the inside of the trap,
the trap closes and jasmonates are produced biosynthetically. JA-Ile interacts with the COI1-
receptor, thereby activating the digestion pathway which leads to the secretion of digestive
fluid and production of transporters needed to take up prey-derived nutrients. In this work it
could be shown that the number of trigger hair bendings is positively correlated with the level
and duration of transcriptional induction of several digestive enzymes/hydrolases.
Abscisic acid (ABA) acts, along with many other functions, as the plant “drought stress
hormone”. It is synthesized either by roots as the primary sensor for water shortage or by
guard cells in the leaves. ABA affects a network of several thousand genes whose regulation
prepares the plant for drought and initiates protective measurements. It was known from
previous work that the application of ABA for 48 hours increased the required amount of
trigger hair bendings to achieve trap closure. As the digestion process is very water-intensive,
the question arose how exactly the interplay between the jasmonate- and the ABA-pathway
is organized, and if ABA could stop the running digestion process once it had been activated.
In the present work it could be shown that the application of ABA on intact traps prior to
mechanically stimulating the trigger hairs (mechanostimulation) already significantly reduced
the transcription of digestive enzymes for an incubation time as short as 4 h, showing that
already short-term exposure to ABA counteracts the effects of jasmonates when it comes to
initiating the digestion process, but does not inhibit trap closure. Incubation for 24 and 48
hours with 100 μM active ABA had no effect on trap reopening, only very high levels of 200
μM of active ABA inhibited trap reopening but also led to tissue necrosis. As the application
of ABA could reduce the transcription of digestive hydrolases, it is likely that Dionaea can stop
the digestion process, if corresponding external stimuli are received.
Another factor, which only emerged later, was the effect of the wounding-induced systemic
jasmonate burst. As efficient as ABA was in inhibiting marker hydrolase expression after
mechanostimulation in intact plants, the application of ABA on truncated traps was not able
to inhibit mechanostimulation-induced marker hydrolase expression. One reason might be
that the ABA-signal is perceived in the roots, and therefore truncated traps were not able to
react to it. Another reason might be that the wounding desensitized the tissue for the ABAsignal.
Further research is required at this point.
Inhibitors of the jasmonate pathway were also used to assess their effect on the regulation of
Dionaea´s hunting cycle. Coronatine-O-methyloxime proved to be a potent inhibitor of
mechanostimulation-induced expression of digestive enzymes, thus confirming the key
regulatory role of jasmonates for Dionaea´s prey consumption mechanism.
In a parallel project, the generation of in vitro cultures from sterilized seeds and single plant
parts proved successful, which may be important for stock-keeping of future transgenic lines.
Protoplasts were generated from leaf blade tissue and transiently transformed, expressing the
reporter protein YFP after 24 h of incubation. In the future this might be the starting point for
the generation of transgenic lines or the functional testing of DNA constructs.
Flowering plants or angiosperms have developed a fertilization mechanism that involves a female egg and central cell, as well as two male sperm cells. A male gametophyte carries the two non-mobile sperm cells, as they need to be delivered to the female gametophyte, the embryo sac. This transport is initiated by a pollen grain that is transmitted onto the stigma of the angiosperm flower. Here it hydrates, germinates, and forms a pollen tube, which navigates through the female plant tissue towards the ovary. The pollen tube grows into an ovule through the funiculus and into one of the two synergid cells. There, growth arrests and the pollen tube bursts, releasing the two sperm cells. One of the sperm cells fuses with the egg cell, giving rise to the embryo, the other one fuses with the central cell, developing into the endosperm, which nourishes the embryo during its development. After a successful fertilization, each ovule develops into a seed and a fruit is formed. This usually consists of several fertilized ovules.
The directional growth of the pollen tube through the maternal tissues towards the ovule, as well as sperm cell release, requires a complex communication between the male and the female gametophyte to achieve reproductive success. Over the last years many studies have been performed, contributing to the understanding of cell-cell communication events between the two gametophytes, nevertheless still many aspects remain to be elucidated.
This work focused on two topics: i.) Analysis of biological processes affected by pollination and fertilization in the Nicotiana tabacum flower and identification of cysteine rich proteins (CRPs) expressed via isolating and sequencing RNA from the tissue and analyzing the resulting data. ii.) Identification of the defensin-like protein (DEFL) responsible for pollen tube attraction towards the ovule in tobacco.
First, tissue samples of pollen tubes and mature ovules were taken at different stages of the fertilization process (unpollinated ovules, after pollination, and after fertilization of the flower). RNA was then isolated and a transcriptome was created. The resulting reads were assembled and transcriptome data analysis was performed. Results showed that pollen tubes and mature ovules differ severely from each other, only sharing about 23 % of the transcripts, indicating that different biological processes are dominant in the two gametophytes. A MapMan analysis revealed that in the pollen tube the most relevant biological processes are related to the cell wall, signaling, and transport, which supports the fact that the pollen tube grows fast to reach the ovule. On the other hand, in the ovule the values of highest significance were obtained for processes related to protein synthesis and regulation. Upon comparing the transcripts in the ovule before and after pollination, as well as after fertilization, it showed that pollination of the flower causes a bigger alteration in the ovule on the transcriptomic level compared to the step from pollination to fertilization.
A total of 953 CRPs were identified in Nicotiana tabacum, including 116 DEFLs. Among those, the peptide responsible for pollen tube attraction towards the ovule should be found. Based on in-silico analysis four candidate peptides were chosen for further analysis, two of which had increased expression levels upon pollination and fertilization and the other two displayed an opposite expression. Quantitative real time PCR experiments were performed for the candidates, confirming the in-silico data in vivo.
The candidate transcripts were then expressed in a cell free system and applied to pollen tubes in order to test their effect on the growing cells. Positive controls were used, where pollen tubes grew towards freshly dissected ovules. The four candidates did not provoke a pollen tube attraction towards the peptide, leaving open the chance to work on the 112 remaining DEFLs in the future.
Reaktive elektrophile Spezies-Oxylipine (RES-Oxylipine) finden sich in Pflanzen- und Tierzellen und zeichnen sich durch eine für sie typische Anordnung von Atomen aus: einer α,β ungesättigten Carbonyl Gruppe. In Pflanzenzellen gehören unter anderem 2-(E)-Hexenal und die Vorstufe der Jasmonsäure 12-Oxophytodiensäure (OPDA) zu den RES-Oxylipinen, in Tierzellen z.B. Prostaglandin A1 (PGA). RES-Oxylipine üben Signalfunktionen aus, wie dies in Pflanzenzellen funktioniert ist jedoch noch nicht bekannt. Ziel dieser Arbeit ist dabei einen möglichen RES-Oxylipin Signalweg aufzuklären und die beteiligten Gene zu identifizieren. Es konnte aber gezeigt werden, dass die Expressionsrate von bestimmten Genen wie z.B. GST6 durch RES-Oxylipine spezifisch induziert wird. Zur Untersuchung des RES-Oxylipin Signalweges wurde der GST6 Promotor vor das Luciferase-Gen fusioniert, um so ein RES-Oxylipin spezifisches Reportersystem zu erhalten. Die Ethylmethansulfonat mutagenisierten Linien wurden auf geänderte Luciferase-Aktivität hin untersucht. Dabei wurden drei Mutanten isoliert, die in dieser Arbeit näher untersucht wurden. Eine zeigte basal erhöhte Luciferase-Aktivität (constitutive overexpresser 3 = coe3) und die anderen beiden erniedrigte Luciferase-Aktivität nach PGA Gabe (non responsive 1 und 2 = nr1 und nr2). In dieser Arbeit konnte gezeigt werden, dass die Phänotypen in allen 3 Mutanten rezessiv vererbt werden und die Mutanten nicht zueinander allel sind. Zudem war die veränderte Luciferase-Aktivität nicht durch geänderte Phytohormonspiegel oder durch Mutationen im GST6 Promotor erklärbar. Auf die Gabe von RES, wie Benzylisothiocyanat oder Sulforaphan, sowie auf endogene RES-Oxylipine, wie OPDA und Hexenal, reagierten die Mutanten auf ähnliche Weise, wie nach PGA Gabe. Weiterführende Untersuchungen zeigten, dass sich die drei Mutanten stark voneinander unterschieden. Das Transkriptom kontrollbehandelter coe3 Pflanzen unterschied sich stark von dem der GST6::LUC Pflanzen. Die Mutante war trockenstressresistenter zudem war sie sensibler gegenüber NaCl, was jedoch nicht von einer veränderten Reaktion auf Abscisinsäure herrührte. Des Weiteren war der Chlorophyllabbau bei dunkel inkubierten Blättern geringer. Bei der Lokalisierung der Mutation, die noch nicht abgeschlossen ist, konnten Chromosom 2 und 5 als die wahrscheinlichsten Kandidaten ermittelt werden. Weitere Analysen sind nötig um den Bereich weiter eingrenzen zu können. Die Mutante nr1, die sich durch verminderte Reaktion auf RES-Oxylipine auszeichnete, zeigte einen kleineren Wuchs und ein deutlich verzögertes Blühen. Außerdem wies die Mutante erhöhte Argininspiegel in ihren Blättern auf. Das Transkriptom unterschied sich sowohl bei kontrollbehandelten, als auch bei PGA behandelten nr1 Pflanzen massiv von denen der gleichbehandelten Kontrollen. Auch die nr1 schien trockenstressresistenter zu sein, sie war im Gegensatz zur coe3 aber robuster gegenüber höheren Konzentrationen an NaCl. Mit Hilfe eines „Next Generation Genome-Mappings“ war es möglich die Mutation am Ende von Chromosom 3 zu lokalisieren und auf fünf mögliche Gene einzugrenzen. Weitere Untersuchungen müssen nun klären, welches dieser Gene ursächlich für den Phänotyp der geänderten Luciferase-Aktivität ist. Die zweite Mutante mit einer reduzierten Reaktion auf RES-Oxylipine war die nr2. Überraschender Weise unterschied sich das Transkriptom kontrollbehandelter nr2 Pflanzen deutlich stärker von dem der gleichbehandelten GST6::LUC Pflanzen, als das nach PGA Gabe der Fall war. Sie reagierte nur mit sehr schwacher Luciferase-Aktivität auf Verwundung und war zudem deutlich sensibler gegenüber Trockenheit. Für eine zukünftige Lokalisation der ursächlichen Mutation wurden entsprechende Kreuzungen durchgeführt aus deren Samen jederzeit mit einer Selektionierung begonnen werden kann. Mit dieser Arbeit konnte ein erster großer Schritt in Richtung Identifikation der, für die geänderte Luciferase-Aktivität, verantwortlichen Mutation gemacht werden, sowie erste Reaktionen der Mutanten auf abiotische Stressfaktoren untersucht werden. Somit ist man der Entdeckung von Signaltransduktionsfaktoren, die RES-Oxylipinabhängig reguliert werden, einen wichtigen Schritt näher gekommen.
Design of novel IL-4 antagonists employing site-specific chemical and biosynthetic glycosylation
(2021)
The cytokines interleukin 4 (IL-4) and IL-13 are important mediators in the humoral immune response and play a crucial role in the pathogenesis of chronic inflammatory diseases, such as asthma, allergies, and atopic dermatitis. Hence, IL-4 and IL-13 are key targets for treatment of such atopic diseases.
For cell signalling IL-4 can use two transmembrane receptor assemblies, the type I receptor consisting of receptors IL-4R and γc, and type II receptor consisting of receptors IL-4R and IL-13R1. The type II receptor is also the functional receptor of IL-13, receptor sharing being the molecular basis for the partially overlapping effects of IL-4 and IL-13. Since both cytokines require the IL-4R receptor for signal transduction, this allows the dual inhibition of both IL-4 and IL-13 by specifically blocking the receptor IL-4R.
This study describes the design and synthesis of novel antagonistic variants of human IL-4. Chemical modification was used to target positions localized in IL-4 binding sites for γc and IL-13R1 but outside of the binding epitope for IL-4R. In contrast to existing studies, which used synthetic chemical compounds like polyethylene glycol for modification of IL-4, we employed glycan molecules as a natural alternative. Since glycosylation can improve important pharmacological parameters of protein therapeutics, such as immunogenicity and serum half-life, the introduced glycan molecules thus would not only confer a steric hindrance based inhibitory effect but simultaneously might improve the pharmacokinetic profile of the IL-4 antagonist.
For chemical conjugation of glycan molecules, IL-4 variants containing additional cysteine residues were produced employing prokaryotic, as well as eukaryotic expression systems. The thiol-groups of the engineered cysteines thereby allow highly specific modification. Different strategies were developed enabling site-directed coupling of amine- or thiol- functionalized monosaccharides to introduced cysteine residues in IL-4. A linker-based coupling procedure and an approach requiring phenylselenyl bromide activation of IL-4 thiol-groups were hampered by several drawbacks, limiting their feasibility. Surprisingly, a third strategy, which involved refolding of IL-4 cysteine variants in the presence of thiol- glycans, readily allowed synthesis of IL-4 glycoconjugates in form of mixed disulphides in milligram amount. This approach, therefore, has the potential for large-scale synthesis of IL-4 antagonists with highly defined glycosylation. Obtaining a homogenous glycoconjugate with exactly defined glycan pattern would allow using the attached glycan structures for fine-tuning of pharmacokinetic properties of the IL-4 antagonist, such as absorption and metabolic stability.
The IL-4 glycoconjugates generated in this work proved to be highly effective antagonists inhibiting IL-4 and/or IL-13 dependent responses in cell-based experiments and in in vitro binding studies. Glycoengineered IL-4 antagonists thus present valuable alternatives to IL-4 inhibitors used for treatment of atopic diseases such as the neutralizing anti-IL-4R antibody Dupilumab.
Arid environments cover almost one-third of the land over the world. Plant life in hot arid regions is prone to the water shortage and associated high temperatures. Drought-stressed plants close the stomata to reduce water loss. Under such conditions, the remaining water loss exclusively happens across the plant cuticle. The cuticular water permeability equals the minimum and inevitable water loss from the epidermal cells to the atmosphere under maximally stomatal closure. Thus, low cuticular water permeability is primordial for plant survival and viability under limited water source. The assumption that non-succulent xerophytes retard water loss due to the secretion of a heavier cuticle is often found in the literature. Intuitively, this seems to be plausible, but few studies have been conducted to evaluate the cuticular permeability of xerophilous plants. In chapter one, we investigated whether the cuticular permeability of Quercus coccifera L. grown in the aridest Mediterranean-subtype climate is indeed lower than that of individuals grown under temperate climate conditions. Also, the cuticular wax chemical compositions of plants grown in both habitats were qualitatively and quantitatively analysed by gas-chromatography. In few words, our findings showed that although the cuticular wax deposition increased in plants under Mediterranean climate, the cuticular permeability remained unaltered, regardless of habitat.
The associated high temperatures in arid regions can drastically increase the cuticular water permeability. Thereby, the thermal stability of the cuticular transpirational barrier is decisive for safeguarding non-succulent xerophytes against desiccation. The successful adaptation of plants to hot deserts might be based on finding different solutions to cope with water and heat stresses. Water-saver plants close the stomata before the leaf water potential drastically changes in order to prevent damage, whereas water-spender plants reduce the leaf water potential by opening the stomata, which allow them to extract water from the deep soil to compensate the high water loss by stomatal transpiration. In chapter two, we compare the thermal stability of the cuticular transpiration barrier of the desert water-saver Phoenix dactylifera L. and the water-spender Citrullus colocynthis (L.) Schrad. In short, the temperature-dependent increase of the cuticular permeability of P. dactylifera was linear over the whole temperature range (25-50°C), while that of C. colocynthis was biphasic with a steep increase at temperatures ≥ 40°C. This drastic increase of cuticular permeability indicates a thermally induced breakdown of the C. colocynthis cuticular transpiration barrier, which does not occur in P. dactylifera. We further discussed how the specific chemical composition of the cutin and cuticular waxes might contribute to the pronounced thermal resistance of the P. dactylifera cuticular transpiration barrier.
A multitude of morpho and physiological modifications, including photosynthetic thermal tolerance and traits related to water balance, led to the successful plant colonisation of hot arid regions over the globe. High evaporative demand and elevated temperatures very often go along together, thereby constraining the plant life in arid environments. In chapter 3, we surveyed cuticular permeability, leaf thermal tolerance, and cuticular wax chemical composition of 14 non-succulent plant species native from some of the hottest and driest biomes in South-America, Europe, and Asia. Our findings showed that xerophilous flowering plants present high variability for cuticular permeability and leaf thermal tolerance, but both physiological features could not be associated with the species original habitat. We also provide substantial evidence that non-succulent xerophytes with more efficient cuticular transpirational barrier have higher leaf thermal tolerance, which might indicate a potential coevolution of these features in hot arid biomes. We further discussed the efficiency of the cuticular transpiration barrier in function to the cuticular wax chemical composition in the general discussion section.
Die wahrscheinlich größten Probleme des 21. Jahrhunderts sind der Klimawandel und die Sicherstellung der Nahrungsmittelversorgung für eine steigende Zahl an Menschen. Durch die Zunahme von extremen Wetterbedingungen wie Trockenheit und Hitze wird der Anbau konventioneller, wenig toleranter Nutzpflanzen erschwert und die dadurch notwendige, steigende Bewässerung der Flächen führt darüber hinaus zu einer zusätzlichen Versalzung der Böden mit für Pflanzen toxischen Natrium- und Chlorid-Ionen. Kenntnisse über Anpassungsstrategien salztoleranter Pflanzen an Salzstress, aber auch detailliertes Wissen über die Steuerung der Transpiration und damit des Wasserverlusts von Pflanzen sind daher wichtig, um auch künftig ertragreiche Landwirtschaft betreiben zu können. In dieser Arbeit habe ich verschiedene Aspekte der pflanzlichen Stressphysiologie bearbeitet, die im Folgenden getrennt voneinander zusammengefasst werden.
I. Funktionelle Unterschiede der PYR/PYL-Rezeptoren von Schließzellen
Entscheidend für den Wasserstatus von Pflanzen ist die Kontrolle des Wasserverlusts durch Spaltöffnungen (Stomata), die von einem Paar Schließzellen gebildet werden. Externe Faktoren wie Licht, Luftfeuchtigkeit und CO2, sowie interne Faktoren wie das Phytohormon Abszisinsäure (ABA) regulieren über Signalkaskaden die Stomaweite und dadurch den Wasserverlust. Die zugrunde liegenden Signalkaskaden überlappen teilweise. Vor allem der Stomaschluss durch erhöhtes CO2 und ABA weisen viele Gemeinsamkeiten auf und die Identifizierung des Konvergenzpunktes beider Signale ist immer noch aktueller Gegenstand der Forschung. Von besonderem Interesse sind dabei die in Schließzellen exprimierten ABA-Rezeptoren der PYR/PYL-Familie. Denn obwohl bislang nicht nachgewiesen werden konnte, dass CO2 zu einem Anstieg des ABA-Gehalts von Schließzellen führt deuten einige Studien darauf hin, dass die ABA-Rezeptoren selbst am CO2-Signalweg beteiligt sind.
Durch Untersuchungen der Stomareaktion von Arabidopsis ABA-Rezeptormutanten konnte ich in dieser Arbeit zeigen, dass die in Schließzellen exprimierten ABA-Rezeptoren der PYR/PYL-Familie funktionale Unterschiede aufweisen. Fünffach-Verlustmutanten der ABA-Rezeptoren PYR1, PYL2, 4, 5 und 8 (12458) waren in ihrem ABA-induzierten Stomaschluss beeinträchtigt und nur die Komplementation mit PYL2 und in geringerem Maße PYR1 konnte die ABA-Sensitivität wiederherstellen. Die Stomata von 12458-Verlustmutanten waren außerdem insensitiv gegenüber erhöhtem CO2, was auf eine Beteiligung der ABA-Rezeptoren am CO2-induzierten Stomaschluss hindeutet und diese Sensitivität konnte nur durch die Komplementation mit PYL4 oder PYL5, nicht aber mit PYL2 wiederhergestellt werden. Somit konnten in dieser Arbeit erstmals funktionelle Unterschiede der PYR/PYLs beim Stoma-Schluss nachgewiesen werden.
Alle externen und internen Stomaschluss-Signale haben außerdem Einfluss auf die Genexpression der Schließzellen und führen zu individuellen expressionellen Adaptionen. In vorangegangenen Microarray Studien konnte gezeigt werden, dass jeder Stimulus auch die Expression eines distinkten Sets an ABA-Rezeptoren beeinflusst. Im Rahmen dieser Arbeit konnte ich außerdem zeigen, dass die Expression der ABA-Rezeptoren bereits auf kleine Änderungen der ABA-Konzentration der Schließzellen reagiert und dass diese sich außerdem in ihrer Sensitivität gegenüber ABA unterschieden. Geringe Änderungen der ABA-Konzentration von Schließzellen haben demnach Auswirkungen auf deren Rezeptor-zusammensetzung. Darüber hinaus konnte ich zeigen, dass die Rezeptoren die Expression unterschiedlicher nachgeschalteter Gene beeinflussen, was darauf hindeutet, dass Anpassungen des Rezeptorpools durch geringe Änderungen des ABA-Gehalts von Schließzellen schlussendlich auf genexpressioneller Ebene zur längerfristigen Adaption an externe Bedingungen führen und die Rezeptoren auch hier funktional verschieden sind.
II. Stomatäre Besonderheiten der toleranten Dattelpalme (Phoenix dactylifera)
Dattelpalmen kommen natürlicherweise an besonders trockenen und heißen Standorten vor, an denen es aufgrund der harschen Bedingungen nur sehr wenigen Pflanzen möglich ist überhaupt zu wachsen. Ein naheliegender Grund für die herausragende Toleranz dieser Art gegenüber wasserlimitierenden Bedingungen ist eine Anpassung der stomatären Regulation zu Gunsten des Wasserhaushalts.
In dieser Arbeit konnte ich durch vergleichende Untersuchungen der lichtabhängigen Transpiration sowie dem ABA-induzierten Stomaschluss grundlegende Unterschiede in der Stomaphysiologie der Dattelpalmen und der eher sensitiven Modellpflanze Arabidopsis thaliana nachweisen. Blattgaswechselmessungen zeigten, dass Dattelpalmen in der Lage sind die Spaltöffnungen bei niedrigen Lichtintensitäten, bei denen Arabidopsis bereits deutlich geöffnete Stomata aufwies, geschlossen zu halten. Der bedeutendste Unterschied in der Stomaphysiologie von Dattelpalmen und Arabidopsis lag aber im ABA-induzierten Stomaschluss. Während über die Petiole verabreichtes ABA bei Arabidopsis innerhalb von 15 Minuten zu einem vollständigen Stomaschluss führte, konnte ich in dieser Arbeit zeigen, dass der ABA-induzierte Stomaschluss der Datteln nitratabhängig ist. ABA allein führte nur zu einem sehr langsamen Stomaschluss der innerhalb einer Stunde nicht vollständig abgeschlossen war. Nur in Gegenwart von Nitrat führte die ABA-Gabe in den Transpirationsstrom der Fiederblätter der Datteln zu einem schnellen und vollständigen Stomaschluss. In Arabidopsis wird der in Schließzellen vorkommende Anionenkanal AtSLAC1 durch eine über den ABA-Signalweg vermittelte Phosphorylierung aktiviert, was schlussendlich zur Aktivierung spannungsabhängiger Kationenkanäle und zum Ausstrom von Kalium aus den Schließzellen führt. Es konnte gezeigt werden, dass die Nitratabhängigkeit der ABA-Antwort der Schließzellen von Dattelpalmen auf Eigenschaften von PdSLAC1 zurückzuführen ist und dieser Kanal nur in Anwesenheit von extrazellulärem Nitrat aktivierbar ist. Mittlerweile konnte, unter anderem basierend auf diesen Ergebnissen, eine Tandem-Aminosäuresequenz identifiziert werden, die die SLAC-Homologe monokotyler Pflanzen wie der Dattelpalme von der dikotyler Pflanzen unterscheidet und zumindest teilweise für die nitratabhängige Aktivierung des Stomaschlusses vieler monokotyler verantwortlich ist.
III. Die Salztoleranz von Phoenix dactylifera und Chenopodium quinoa
Sowohl Dattelpalmen als auch C. quinoa weisen, verglichen mit den meisten anderen Pflanzen, eine hohe Toleranz gegenüber NaCl-haltigen Böden auf. In dieser Arbeit habe ich die Salztoleranz beider Arten untersucht, um so Strategien zu identifizieren, die diesen Pflanzen diese gesteigerte Toleranz ermöglichen.
Dattelpalmen können natürlicherweise auf salzigen Böden wachsen. Makroskopisch weisen diese Pflanzen aber keine Anpassungen wie bspw. Salzdrüsen auf und bislang ist unklar wie Dattelpalmen mit dem NaCl aus dem Boden umgehen. In dieser Arbeit konnte ich zeigen, dass der Natriumgehalt der Fiederblätter der Datteln durch eine sechswöchige Bewässerung mit 600mM NaCl, was ungefähr der Konzentration von Meerwasser entspricht, nicht zunimmt. Demnach sind Datteln so genannte „Exkluder“, also Pflanzen, die eine übermäßige Natriumaufnahme in photosynthetisch aktives Gewebe vermeiden. Der Natriumgehalt der Wurzeln dagegen nahm unter Salzstress aber zu. Diese Zunahme war allerdings in unterschiedlichen Bereichen der Wurzeln verschieden stark. Flammenphotometrische Messungen ergaben einen vom Wurzelansatz ausgehenden graduellen Anstieg des Natriumgehalts, der an der Wurzelspitze am höchsten war. Darüber hinaus konnte eine Induktion von PdSOS1, einem putativen Na+/H+-Antiporter in diesen unteren, natriumhaltigen Bereichen nachgewiesen werden. Eine hohe SOS1-Aktivität gilt bereits in anderen toleranten Arten als Schlüsselmerkmal für deren Toleranz und die gesteigerte Expression von PdSOS1 deutet auf eine erhöhte Natrium-Exportrate aus der Wurzel zurück in den Boden in diesen unteren Bereichen hin, was schlussendlich den Ausschluss von Natrium vermitteln könnte.
In sensitiven Arten führt Salzstress häufig zu einer Abnahme der Kaliumkonzentration des Gewebes. Interessanterweise war dies weder für das Blatt- noch das Wurzelgewebe der Dattelpalmen der Fall. Der Kaliumgehalt beider Gewebe blieb trotz der Bewässerung der Pflanzen mit Salzwasser konstant. Auf expressioneller Ebene konnte ich darüber hinaus zeigen, dass PdHAK5, ein putativer hochaffiner Kaliumtransporter, der unter Kontrollbedingungen überwiegend in den oberen Wurzelabschnitten exprimiert wurde, durch den Salzstress dort reprimiert wurde. PdKT, ebenfalls ein putatives Kalium-Transportprotein dagegen, wurde nicht durch die Salzbehandlung beeinflusst, was zusammengenommen darauf hindeutet, dass das Aufrechterhalten des Kaliumgehalts bei Salzstress durch die differentielle Regulation verschiedener Kaliumaufnahmesysteme gewährleistet wird. Der effiziente Ausschluss von Natrium zusammen mit dem hohen K+/Na+-Verhältnis könnten demnach Schlüsselmerkmale für die hohe Salztoleranz von Phoenix dactylifera darstellen.
Quinoa ist, ähnlich wie die Dattelpalme, eine salztolerante Nutzpflanze. Im Gegensatz zu Dattelpalmen weist Quinoa allerdings besondere Strukturen auf der Epidermis auf, die so genannten epidermalen Blasenhaare (englisch: epidermal bladder cells, EBCs). Die Funktion dieser ballonartig vergrößerten Zellen als externe Salzspeicher wird seit längerem diskutiert.
Flammenphotometrische Messungen des Natriumgehalts von Quinoa unter Salzstressbedingungen ergaben, dass Quinoa anders als Dattelpalmen, Natrium in die oberirdischen, photosynthetisch aktiven Organe aufnimmt. Auch die Zunahme des Natriumgehalts der EBCs konnte ich nachweisen. Junge Blätter haben eine hohe Dichte an intakten EBCs, was deren Funktion als externe Salzspeicher besonders zum Schutz dieser jungen Blätter nahelegt. mRNA-Sequenzierungen ergaben darüber hinaus, dass die EBCs bereits unter Kontrollbedingungen viele in grundlegende Stoffwechselprozesse involvierte Gene sowie membranständige Transportproteine differentiell exprimieren. Diese Unterschiede im Transkriptom der EBCs zum Blattgewebe zeigen, dass katabole Stoffwechselwege nur eine untergeordnete Rolle in den hochspezialisierten EBCs spielen und deren Stoffwechsel auf dem Import energiereicher Zucker und Aminosäuren basiert.
Mittels qPCR-Messungen und RNA-Sequenzierungen konnte ich die gewebespezifische Expression verschiedener Transportproteine nachweisen, die eine gerichtete Aufnahme von Natrium in EBCs ermöglichen könnten. Besonders die differentielle Expression eines Natriumkanals der HKT1-Familie deutet auf dessen Beteiligung an der Natriumbeladung der EBCs hin. CqHKT1.2 wurde ausschließlich in EBCs exprimiert und die elektrophysiologische Charakterisierung dieses Transportproteins ergab eine spannungsabhängige Natriumleitfähigkeit. Dieser Natriumkanal kann demnach die Natriumaufnahme bei Membranspannungen nahe dem Ruhepotential in die EBCs vermitteln und die Deaktivierung des CqHKT1.2 bei depolarisierenden Membranspannungen kann darüber hinaus einen Efflux von Na+ aus den EBCs verhindern. Auch das Expressionsmuster eines putativen Na+/H+-Antiporters (CqSOS1) der nur sehr gering in EBCs aber deutlich höher in Blattgewebe exprimiert wurde, deutet auf eine indirekte Beteiligung dieses SOS1 an der Beladung der EBCs hin. Bereits charakterisierte SOS1-Proteine anderer Pflanzen zeigten unter physiologischen Bedingungen eine Natriumexport-Aktivität. CqSOS1 könnte demnach den Export von Natrium aus Mesophyll- und Epidermiszellen der Blätter in den Apoplasten vermitteln, welches dann über CqHKT1.2 in die EBCs aufgenommen wird.
Trotz der Natriumaufnahme in die oberirdischen Teile und die EBCs führte die Salzbehandlung ähnlich wie bei den Datteln nicht zu einer Abnahme des bemerkenswert hohen Kaliumgehalts. Mittels qPCR-Untersuchungen konnte ich die Expression verschiedener HAK-Orthologe nachweisen, deren Aktivität die Aufrechterhaltung des Kaliumgehalts unter Salzstress vermitteln könnten. Frühere Studien konnten zeigen, dass Salzstress bei Quinoa wie bei vielen salztoleranten Arten zu einem Anstieg der Konzentration von kompatiblen gelösten Substanzen und besonders von Prolin führt. In dieser Arbeit konnte ich die hohe Expression eines Prolintransporters in EBCs nachweisen, was eher auf einen importbasierten Anstieg der Prolinkonzentration als auf die Synthese innerhalb der EBCs schließen lässt.
Zusammengefasst ergaben der Anstieg des Natriumgehalts der EBCs in Verbindung mit den Ergebnissen der RNA-Sequenzierung und den ergänzenden qPCR Messungen, dass die EBCs von Quinoa bereits unter Kontrollbedingen für die Aufnahme von überschüssigen Ionen unter Salzstress spezialisierte Zellen sind, deren Spezialisierung auf dem Import von energiereichreichen Zucken und anderen Substanzen basiert.
The cytokine interleukin-5 (IL-5) is part of the TH2-mediated immune response. As a key regulator of eosinophilic granulocytes (eosinophils), IL-5 controls multiple aspects of eosinophil life. Eosinophils play a pathogenic role in the onset and progression of atopic diseases as well as hypereosinophilic syndrome (HES). Here, cytotoxic proteins and pro-inflammatory mediators stored in intracellular vesicles termed granula are released upon activation thereby causing local inflammation to fight the pathogen. However, if such inflammation persists, tissue damage and organ failure can occur. Due to the close relationship between eosinophils and IL-5 this cytokine has become a major pharmaceutical target for the treatment of atopic diseases or HES. As observed with other cytokines, IL-5 signals by assembling a heterodimeric receptor complex at the cell surface in a stepwise mechanism. In the first step IL-5 binds to its receptor IL-5Rα (CD125). This membrane-located complex then recruits the so-called common beta chain βc (CD131) into a ternary ligand receptor complex, which leads to activation of intracellular signaling cascades. Based on this mechanism various strategies targeting either IL-5 or IL-5Rα have been developed allowing to specifically abrogate IL-5 signaling. In addition to the classical approach of employing neutralizing antibodies against IL 5/IL-5Rα or antagonistic IL-5 variants, two groups comprising small 18 to 30mer peptides have been discovered, that bind to and block IL-5Rα from binding its activating ligand IL-5. Structure-function studies have provided detailed insights into the architecture and interaction of IL-5IL-5Rα and βc. However, structural information for the ternary IL-5 complex as well as IL-5 inhibiting peptides is still lacking.
In this thesis three areas were investigated. Firstly, to obtain insights into the second receptor activation step, i.e. formation of the ternary ligand-receptor complex IL-5•IL-5Rα•βc, a high-yield production for the extracellular domain of βc was established to facilitate structure determination of the ternary ligand receptor assembly by either X-ray crystallography or cryo-electron microscopy.
In a second project structure analysis of the ectodomain of IL-5Rα in its unbound conformation was attempted. Data on IL-5Rα in its ligand-free state would provide important information as to whether the wrench-like shaped ectodomain of IL-5Rα adopts a fixed preformed conformation or whether it is flexible to adapt to its ligand binding partner upon interaction. While crystallization of free IL-5Rα failed, as the crystals obtained did not diffract X rays to high resolution, functional analysis strongly points towards a selection fit binding mechanism for IL-5Rα instead of a rigid and fixed IL-5Rα structure. Hence IL-5 possibly binds to a partially open architecture, which then closes to the known wrench-like architecture. The latter is then stabilized by interactions within the D1-D2 interface resulting in the tight binding of IL-5.
In a third project X-ray structure analysis of a complex of the IL-5 inhibitory peptide AF17121 bound to the ectodomain of IL-5Rα was performed. This novel structure shows how the small cyclic 18mer peptide tightly binds into the wrench-like cleft formed by domains D1 and D2 of IL-5Rα. Due to the partial overlap of its binding site at IL-5Rα with the epitope for IL-5 binding, the peptide blocks IL-5 from access to key residues for binding explaining how the small peptide can effectively compete with the rather large ligand IL-5. While AF17121 and IL-5 seemingly bind to the same site at IL-5Rα, functional studies however showed that recognition and binding of both ligands differ. With the structure for the peptide-receptor complex at hand, peptide design and engineering could be performed to generate AF17121 analogies with enhanced receptor affinity. Several promising positions in the peptide AF17121 could be identified, which could improve inhibition capacity and might serve as a starting point for AF17121-based peptidomimetics that can yield either superior peptide based IL-5 antagonists or small-molecule-based pharmacophores for future therapies of atopic diseases or the hypereosinophilic syndrome.
Seit mehr als zwei Jahrzehnten ist bekannt, dass nicht nur der Tumor Nekrose Faktor-α (=TNF-α) sondern auch Lymphotoxin-α (=LTα) in Form von Trimeren an TNFR1 und TNFR2 binden kann. Durch diese Fähigkeit an beide Rezeptoren zu binden, haben diese zwei Liganden eine essentielle Rolle in der Entwicklung und dem Verlauf von Autoimmunerkrankungen. Bereits mit Beginn der 1990er Jahren wurde gezeigt, dass LTα nicht nur in Form von Homotrimeren vorliegt, sondern auch mit dem verwandten TNF-Superfamilie Liganden Lymphotoxin β (=LTβ) Heterotrimere bilden kann. Hierbei lagern sich LTα und LTβ in Form von LTα2β und LTαβ2 zusammen. Die initialen Experimente mit diesen Heterotrimeren zeigten bereits Unterschiede von LTα2β und LTαβ2. Während LTα2β wie LTα an den TNFR1 bindet, kann LTαβ2 weder an TNFR1 noch TNFR2 binden und interagiert mit einem eigenen Rezeptor namens Lymphotoxin β Rezeptor (=LTβR). Da bereits zwei Liganden (TNF und LTα) für TNFR1 und TNFR2 bekannt waren, wurde LTα2β bis heute nicht weiter charakterisiert. LTαβ2 hingegen war lange Zeit der einzige bekannte Ligand für den LTβR, weshalb die LTαβ2-LTβR-Interaktion ausführlich untersucht wurde.
Diese Arbeit fokusiert sich auf die Charakterisierung von LTα2β. Hierfür wurde die einzige bekannte Eigenschaft aus den 90er Jahren von LTα2β nämlich die Bindung an TNFR1 aufgegriffen und um die Rezeptoren TNFR2 und LTβR erweitert. Diese Arbeit zeigt, dass LTα2β nicht nur an den TNFR1, sondern auch an TNFR2 und schwach an LTβR bindet. Trotz der asymmetrischen Bindestellen kann membrangebundenes LTα2β TNFR1 und TNFR2 nicht nur binden, sondern ist auch in der Lage diese zu aktivieren. Diese Arbeit gibt erste Einblicke in die Komplexizität dieses Heterotrimers indem gezeigt wird, dass LTα2β sowohl in seiner löslichen als auch in seiner membrangebundenen Form den TNFR1 aktivieren kann, während der TNFR2 nur durch das membranständige LTα2β aktiviert wird. Aufgrund der aktivierenden Eigenschaften von membranständigem LTα2β und LTαβ2 auf die murine (=mu) Panc02-Zelllinie wird ein ersten Ausblick auf mögliche weitergehende Experimente in mausbasierten Modellen gegeben. Die erzielten Ergebnisse zeigen, dass mit membranständigem LTα2β ein neuer TNFR2 Agonist gefunden wurde.
Soil salinity is an increasingly global problem which hampers plant growth and crop yield. Plant productivity depends on optimal water-use efficiency and photosynthetic capacity balanced by stomatal conductance. Whether and how stomatal behavior contributes to salt sensitivity or tolerance is currently unknown. This work identifies guard cell-specific signaling networks exerted by a salt-sensitive and salt-tolerant plant under ionic and osmotic stress conditions accompanied by increasing NaCl loads.
We challenged soil-grown Arabidopsis thaliana and Thellungiella salsuginea plants with short- and long-term salinity stress and monitored genome-wide gene expression and signals of guard cells that determine their function.
Arabidopsis plants suffered from both salt regimes and showed reduced stomatal conductance while Thellungiella displayed no obvious stress symptoms. The salt-dependent gene expression changes of guard cells supported the ability of the halophyte to maintain high potassium to sodium ratios and to attenuate the abscisic acid (ABA) signaling pathway which the glycophyte kept activated despite fading ABA concentrations.
Our study shows that salinity stress and even the different tolerances are manifested on a single cell level. Halophytic guard cells are less sensitive than glycophytic guard cells, providing opportunities to manipulate stomatal behavior and improve plant productivity.
The role of lipid transfer proteins (LTPs) during the fertilization process in Arabidopsis thaliana
(2021)
Double fertilization is a defining characteristic of flowering plants (angiosperms). As the sperm cells of higher plants are non-motile, they need to be transported to the female gametophyte via the growing pollen tube. The pollen-tube journey through the female tissues represents a highly complex process. To provide for successful reproduction it demands intricate communication between the cells of the two haploid gametophytes - the polar growing pollen tube (carrying the two non-motile sperm cells) and the ovule (hosting the egg cell/synergid cells). The polar growth of the pollen tube towards the female gamete is guided by different signaling molecules, including sugars, amino acids and peptides. Some of these belong to the family of lipid transfer proteins (LTPs), which are secreted cysteine-rich peptides. Depending on the plant species several lines of evidence have also suggested potential roles for LTPs during pollen germination or pollen-tube guidance. Although Arabidopsis thaliana has 49 annotated genes for LTPs, several of which are involved in plant immunity and cell-to-cell communication, the role of most members of this family during fertilization is unknown.
The aim of this project was therefore to systematically identify LTPs which play a role in the fertilization process in A. thaliana, particularly during pollen tube guidance. To identify candidate proteins, the expression profile of LTPs in reproductive tissue was investigated. This was accomplished by in-silico bioinformatic analysis using different expression databases. Following confirmion of these results by qRT-PCR analysis, seven Type-I nsLTPs (LTP1, LTP2, LTP3, LTP4, LTP5, LTP6 and LTP12) were found to be exclusively expressed in pistils. Except for LTP12, all other pistil expressed LTPs were transcriptionally induced upon pollination. Using reporter-based transcriptional and translational fusions the temporal and spatial expression patterns together with protein localizations for LTP2, 3, 4, 5, 6, and 12 were determined in planta. Stable transgenic plants carrying PromLTP::GUS constructs of the six different LTP candidates showed that most of LTPs were expressed in the stigma/stylar region and were induced upon pollination. With respect to protein localization on the cellular level, they split into two categories: LTP2, LTP5 and LTP6 were localized in the cell wall, while LTP3, LTP4 and LTP12 were specifically targeted to the plasma membrane.
For the functional characterization of the candidate LTPs, several T-DNA insertion mutant plant lines were investigated for phenotypes affecting the fertilization process. Pollen development and quality as well as their in-vitro germination rate did not differ between the different single ltp mutant lines and wildtype plants. Moreover, in-vivo cross pollination experiments revealed that tube growth and fertilization rate of the mutant plants were similar to wildtype plants. Altogether, no discernible phenotype was evident in other floral and vegetative parts between different single ltp mutant lines and wildtype plants. As there was no distinguishable phenotype observed for single ltp-ko plants, double knock out plants of the two highly homologous genes LTP2 (expressed in the female stigma, style and transmitting tract) and LTP5 (expressed in the stigma, style, pollen pollen-tube and transmitting tract) were generated using the EPCCRISPR-Cas9 genome editing technique. Two ltp2ltp5 mutant transgenic-lines (#P31-P2 and #P31-P3) with frameshift mutations in both the genes could be established. Further experiments showed, that the CRISPR/Cas9-mediated knock-out of LTP2/LTP5 resulted in significantly reduced fertilization success. Cell biological analyses revealed that the ltp2ltp5 double mutant was impaired in pollen tube guidance towards the ovules and that this phenotype correlated with aberrant callose depositions in the micropylar region during ovule development. Detailed analysis of in-vivo pollen-tube growth and reciprocal cross pollination assay suggested that, the severely compromised fertility was not caused by any defect in development of the pollen grains, but was due to the abnormal callose deposition in the embryo sac primarily concentrated at the synergid cell near the micropylar end. Aberrant callose deposition in ltp2ltp5 ovules pose a complete blockage for the growing pollen tube to change its polarity to enter the funiculus indicating funicular and micropylar defects in pollen tube guidance causing fertilization failure.
Our finding suggests that female gametophyte expressed LTP2 and LTP5 play a crucial role in mediating pollen tube guidance process and ultimately having an effect on the fertilization success. In line with the existence of a N-terminal signal peptide, secreted LTPs might represent a well-suited mobile signal carrier in the plant’s extracellular matrix. Previous reports suggested that, LTPs could act as chemoattractant peptide, imparting competence to the growing pollen tube, but the molecular mechanism is still obscure. The results obtained in this thesis further provide strong evidence, that LTP2/5 together regulate callose homeostasis and testable models are discussed. Future work is now required to elucidate the detailed molecular link between these LTPs and their potential interacting partners or receptors expressed in pollen and synergid cells, which should provide deeper insight into their functional role as regulatory molecules in the pollen tube guidance mechanism.
The cuticle is constituted of the biopolymer cutin and intra- and epicuticular waxes. In some cases, it has epicuticular wax crystals, protruding from the epicuticular wax film. One of the most important tasks is protection against desiccation. Many investigations were conducted to find the transport limiting component of the cuticle. It is evidentially confirmed that the waxes form this barrier. These waxes are multifactorial blends made of very-long-chain aliphatic (VLCA) compounds and triterpenoids (TRP). The VLCAs were proposed to constitute the transpiration barrier to water. However, experimental confirmation was lacking so far. The present study focuses on the development of a method to selectively extract TRPs from the cuticle and the impact of the removal on the transpiration barrier.
The plants deployed in this study exhibited several features. They had no epicuticular crystals on their surfaces, were astomatous, had a rather durable and possibly isolatable cuticle. A broad range of wax compositions was covered from plants with no TRP content and low wax load like Hedera helix and Zamioculcas zamiifolia to plants with high TRP content and high wax load like Nerium oleander. The selective extraction was conducted using a sequence of solvents. TRPs were extracted almost exhaustively from CMs with the first MeOH extract. Only a minor amount of shorter chained VLCAs was obtained. The remaining waxes, consisting mostly of VLCAs and some remnant TRPs, were removed with the following TCM extract.
After the extractions, the water permeance of native cuticular membranes (CM), MeOH extracted (M) and dewaxed cuticular discs (MX) was investigated gravimetrically. Compared to the water permeance of CMs, Ms showed no or only a small increase in water conductance. MXs, however, always showed strongly increased values.
The knowledge about the wax compounds constituting the transport-limiting properties is vital for different projects. For various issues, it would be favourable to have a standardized wax mixture as an initial point of research. It could be used to develop screening procedures to investigate the impact of adjuvants on cuticular waxes or the influence of wax constituents on the properties of cuticular waxes. This work concentrated on the development of an artificial wax mixture, which mimics the physical properties of a plant leaf wax sufficiently.
As target wax, the leaf wax of Schefflera elegantissima was chosen. The wax of this plant species consisted almost exclusively of VLCAs, had a rather simple composition regarding compound classes and chain length distribution and CMs could be isolated. Artificial binary, ternary and quaternary waxes corresponding to the conditions within the plant wax were investigated using differential scanning calorimetry (DSC), X-ray diffraction (XRD) techniques and Fourier-transform infrared (FTIR) spectroscopy. Phase diagrams were mapped out for a series of binary, ternary and quaternary wax mixtures. FTIR experiments were conducted using, ternary and a quaternary artificial wax blends. The blends were chosen to represent the conditions within the wax of the adaxial CM plant wax. The FTIR experiments exhibited an increasing resemblance of the artificial wax to the plant wax (adaxial CM wax) with an increasing number of compounds in the artificial wax. The same trend was found for DSC thermograms. Thermograms of ternary and quaternary blends exhibited more overlapping peaks and occurred in a temperature range more similar to the range of the whole leaf plant wax. The XRD spectrum at room temperature showed good conformity with the quaternary blend.
The current work illustrates a method for selective extraction of TRPs from isolated CMs. It gives direct experimental proof of the association of the water permeance barrier with the VLCA rather than to the TRPs. Furthermore, the possibility to mimic cuticular waxes using commercially available wax compounds is investigated. The results show promising feasibility for its viability, enabling it to perform as a standardized initial point for further research (e.g. to examine the influence of different constituents on waxes), revealing valuable knowledge about the structure and the chemistry-function relationship of cuticular waxes.
In vitro rearing of honeybee larvae is an established method that enables exact control and monitoring of developmental factors and allows controlled application of pesticides or pathogens. However, only a few studies have investigated how the rearing method itself affects the behavior of the resulting adult honeybees. We raised honeybees in vitro according to a standardized protocol: marking the emerging honeybees individually and inserting them into established colonies. Subsequently, we investigated the behavioral performance of nurse bees and foragers and quantified the physiological factors underlying the social organization. Adult honeybees raised in vitro differed from naturally reared honeybees in their probability of performing social tasks. Further, in vitro-reared bees foraged for a shorter duration in their life and performed fewer foraging trips. Nursing behavior appeared to be unaffected by rearing condition. Weight was also unaffected by rearing condition. Interestingly, juvenile hormone titers, which normally increase strongly around the time when a honeybee becomes a forager, were significantly lower in three- and four-week-old in vitro bees. The effects of the rearing environment on individual sucrose responsiveness and lipid levels were rather minor. These data suggest that larval rearing conditions can affect the task performance and physiology of adult bees despite equal weight, pointing to an important role of the colony environment for these factors. Our observations of behavior and metabolic pathways offer important novel insight into how the rearing environment affects adult honeybees.
Plant stress signalling involves bursts of reactive oxygen species (ROS), which can be mimicked by the application of acute pulses of ozone. Such ozone-pulses inhibit photosynthesis and trigger stomatal closure in a few minutes, but the signalling that underlies these responses remains largely unknown.
We measured changes in Arabidopsis thaliana gas exchange after treatment with acute pulses of ozone and set up a system for simultaneous measurement of membrane potential and cytosolic calcium with the fluorescent reporter R-GECO1.
We show that within 1 min, prior to stomatal closure, O\(_{3}\) triggered a drop in whole-plant CO\(_{2}\) uptake. Within this early phase, O\(_{3}\) pulses (200–1000 ppb) elicited simultaneous membrane depolarization and cytosolic calcium increase, whereas these pulses had no long-term effect on either stomatal conductance or photosynthesis. In contrast, pulses of 5000 ppb O\(_{3}\) induced cell death, systemic Ca\(^{2+}\) signals and an irreversible drop in stomatal conductance and photosynthetic capacity.
We conclude that mesophyll cells respond to ozone in a few seconds by distinct pattern of plasma membrane depolarizations accompanied by an increase in the cytosolic calcium ion (Ca\(^{2+}\)) level. These responses became systemic only at very high ozone concentrations. Thus, plants have rapid mechanism to sense and discriminate the strength of ozone signals.
Cytosolic calcium signals are evoked by a large variety of biotic and abiotic stimuli and play an important role in cellular and long distance signalling in plants. While the function of the plasma membrane in cytosolic Ca\(^{2+}\) signalling has been intensively studied, the role of the vacuolar membrane remains elusive.
A newly developed vacuolar voltage clamp technique was used in combination with live-cell imaging, to study the role of the vacuolar membrane in Ca\(^{2+}\) and pH homeostasis of bulging root hair cells of Arabidopsis.
Depolarisation of the vacuolar membrane caused a rapid increase in the Ca\(^{2+}\) concentration and alkalised the cytosol, while hyperpolarisation led to the opposite responses.
The relationship between the vacuolar membrane potential, the cytosolic pH and Ca2+ concentration suggests that a vacuolar H\(^{+}\)/Ca\(^{2+}\) exchange mechanism plays a central role in cytosolic Ca2+ homeostasis. Mathematical modelling further suggests that the voltage-dependent vacuolar Ca\(^{2+}\) homeostat could contribute to calcium signalling when coupled to a recently discovered K\(^{+}\) channel-dependent module for electrical excitability of the vacuolar membrane.
Background
While leaves are far more accessible for analysing plant defences, roots are hidden in the soil, leading to difficulties in studying soil-borne interactions. Inoculation strategies for infecting model plants with model root pathogens are described in the literature, but it remains demanding to obtain a methodological overview. To address this challenge, this study uses the model root pathogen Verticillium longisporum on Arabidopsis thaliana host plants and provides recommendations for selecting appropriate infection systems to investigate how plants cope with root pathogens.
Results
A novel root infection system is introduced, while two existing ones are precisely described and optimized. Step-by-step protocols are presented and accompanied by pathogenicity tests, transcriptional analyses of indole-glucosinolate marker genes and independent confirmations using reporter constructs. Advantages and disadvantages of each infection system are assessed. Overall, the results validate the importance of indole-glucosinolates as secondary metabolites that limit the Verticillium propagation in its host plant.
Conclusion
Detailed assistances on studying host defence strategies and responses against V. longisporum is provided. Furthermore, other soil-borne microorganisms (e.g., V. dahliae) or model plants, such as economically important oilseed rape and tomato, can be introduced in the infection systems described. Hence, these proven manuals can support finding a root infection system for your specific research questions to further decipher root-microbe interactions.
Epidermal fragments enriched in guard cells (GCs) were isolated from the halophyte quinoa (Chenopodium quinoa Wild.) species, and the response at the proteome level was studied after salinity treatment of 300 mM NaCl for 3 weeks. In total, 2147 proteins were identified, of which 36% were differentially expressed in response to salinity stress in GCs. Up and downregulated proteins included signaling molecules, enzyme modulators, transcription factors and oxidoreductases. The most abundant proteins induced by salt treatment were desiccation-responsive protein 29B (50-fold), osmotin-like protein OSML13 (13-fold), polycystin-1, lipoxygenase, alpha-toxin, and triacylglycerol lipase (PLAT) domain-containing protein 3-like (eight-fold), and dehydrin early responsive to dehydration (ERD14) (eight-fold). Ten proteins related to the gene ontology term “response to ABA” were upregulated in quinoa GC; this included aspartic protease, phospholipase D and plastid-lipid-associated protein. Additionally, seven proteins in the sucrose–starch pathway were upregulated in the GC in response to salinity stress, and accumulation of tryptophan synthase and L-methionine synthase (enzymes involved in the amino acid biosynthesis) was observed. Exogenous application of sucrose and tryptophan, L-methionine resulted in reduction in stomatal aperture and conductance, which could be advantageous for plants under salt stress. Eight aspartic proteinase proteins were highly upregulated in GCs of quinoa, and exogenous application of pepstatin A (an inhibitor of aspartic proteinase) was accompanied by higher oxidative stress and extremely low stomatal aperture and conductance, suggesting a possible role of aspartic proteinase in mitigating oxidative stress induced by saline conditions.
Guard cells control the aperture of plant stomata, which are crucial for global fluxes of CO\(_2\) and water. In turn, guard cell anion channels are seen as key players for stomatal closure, but is activation of these channels sufficient to limit plant water loss? To answer this open question, we used an optogenetic approach based on the light-gated anion channelrhodopsin 1 (GtACR1). In tobacco guard cells that express GtACR1, blue- and green-light pulses elicit Cl\(^-\) and NO\(_3\)\(^-\) currents of -1 to -2 nA. The anion currents depolarize the plasma membrane by 60 to 80 mV, which causes opening of voltage-gated K+ channels and the extrusion of K+. As a result, continuous stimulation with green light leads to loss of guard cell turgor and closure of stomata at conditions that provoke stomatal opening in wild type. GtACR1 optogenetics thus provides unequivocal evidence that opening of anion channels is sufficient to close stomata.
Simple Summary
Abiotic and biotic stress conditions result in profound changes in plant lipid metabolism. Vegetable oil consists of triacylglycerols, which are important energy and carbon storage compounds in seeds of various plant species. These compounds are also present in vegetative tissue, and levels have been reported to increase with different abiotic stresses in leaves. This work shows that triacylglycerols accumulate in roots and in distal, non-treated leaves upon treatment with a fungal pathogen or lipopolysaccharide (a common bacterial-derived elicitor in animals and plants). Treatment of leaves with a bacterial pathogen or a bacterial effector molecule results in triacylglycerol accumulation in leaves, but not systemically in roots. These results suggest that elicitor molecules are sufficient to induce an increase in triacylglycerol levels, and that unidirectional long-distance signaling from roots to leaves is involved in pathogen and elicitor-induced triacylglycerol accumulation.
Abstract
Interaction of plants with the environment affects lipid metabolism. Changes in the pattern of phospholipids have been reported in response to abiotic stress, particularly accumulation of triacylglycerols, but less is known about the alteration of lipid metabolism in response to biotic stress and leaves have been more intensively studied than roots. This work investigates the levels of lipids in roots as well as leaves of Arabidopsis thaliana in response to pathogens and elicitor molecules by UPLC-TOF-MS. Triacylglycerol levels increased in roots and systemically in leaves upon treatment of roots with the fungus Verticillium longisporum. Upon spray infection of leaves with the bacterial pathogen Pseudomonas syringae, triacylglycerols accumulated locally in leaves but not in roots. Treatment of roots with a bacterial lipopolysaccharide elicitor induced a strong triacylglycerol accumulation in roots and leaves. Induction of the expression of the bacterial effector AVRRPM1 resulted in a dramatic increase of triacylglycerol levels in leaves, indicating that elicitor molecules are sufficient to induce accumulation of triacylglycerols. These results give insight into local and systemic changes to lipid metabolism in roots and leaves in response to biotic stresses.
Climate change is increasing the frequency and intensity of warming and drought periods around the globe, currently representing a threat to many plant species. Understanding the resistance and resilience of plants to climate change is, therefore, urgently needed. As date palm (Phoenix dactylifera) evolved adaptation mechanisms to a xeric environment and can tolerate large diurnal and seasonal temperature fluctuations, we studied the protein expression changes in leaves, volatile organic compound emissions, and photosynthesis in response to variable growth temperatures and soil water deprivation. Plants were grown under controlled environmental conditions of simulated Saudi Arabian summer and winter climates challenged with drought stress. We show that date palm is able to counteract the harsh conditions of the Arabian Peninsula by adjusting the abundances of proteins related to the photosynthetic machinery, abiotic stress and secondary metabolism. Under summer climate and water deprivation, these adjustments included efficient protein expression response mediated by heat shock proteins and the antioxidant system to counteract reactive oxygen species formation. Proteins related to secondary metabolism were downregulated, except for the P. dactylifera isoprene synthase (PdIspS), which was strongly upregulated in response to summer climate and drought. This study reports, for the first time, the identification and functional characterization of the gene encoding for PdIspS, allowing future analysis of isoprene functions in date palm under extreme environments. Overall, the current study shows that reprogramming of the leaf protein profiles confers the date palm heat- and drought tolerance. We conclude that the protein plasticity of date palm is an important mechanism of molecular adaptation to environmental fluctuations.
Key message
Mobile laser scanning and geometrical analysis revealed relationships between tree geometry and seed dispersal mechanism, latitude of origin, as well as growth.
Abstract
The structure and dynamics of a forest are defined by the architecture and growth patterns of its individual trees. In turn, tree architecture and growth result from the interplay between the genetic building plans and environmental factors. We set out to investigate whether (1) latitudinal adaptations of the crown shape occur due to characteristic solar elevation angles at a species’ origin, (2) architectural differences in trees are related to seed dispersal strategies, and (3) tree architecture relates to tree growth performance. We used mobile laser scanning (MLS) to scan 473 trees and generated three-dimensional data of each tree. Tree architectural complexity was then characterized by fractal analysis using the box-dimension approach along with a topological measure of the top heaviness of a tree. The tree species studied originated from various latitudinal ranges, but were grown in the same environmental settings in the arboretum. We found that trees originating from higher latitudes had significantly less top-heavy geometries than those from lower latitudes. Therefore, to a certain degree, the crown shape of tree species seems to be determined by their original habitat. We also found that tree species with wind-dispersed seeds had a higher structural complexity than those with animal-dispersed seeds (p < 0.001). Furthermore, tree architectural complexity was positively related to the growth performance of the trees (p < 0.001). We conclude that the use of 3D data from MLS in combination with geometrical analysis, including fractal analysis, is a promising tool to investigate tree architecture.
Background
Microbial rhodopsins vary in their chemical properties, from light sensitive ion transport to different enzymatic activities. Recently, a novel family of two-component Cyclase (rhod)opsins (2c-Cyclop) from the green algae Chlamydomonas reinhardtii and Volvox carteri was characterized, revealing a light-inhibited guanylyl cyclase (GC) activity. More genes similar to 2c-Cyclop exist in algal genomes, but their molecular and physiological functions remained uncharacterized.
Results
Chlamyopsin-5 (Cop5) from C. reinhardtii is related to Cr2c-Cyclop1 (Cop6) and can be expressed in Xenopus laevis oocytes, but shows no GC activity. Here, we exchanged parts of Cop5 with the corresponding ones of Cr2c-Cyclop1. When exchanging the opsin part of Cr2c-Cyclop1 with that of Cop5, we obtained a bi-stable guanylyl cyclase (switch-Cyclop1) whose activity can be switched by short light flashes. The GC activity of switch-Cyclop1 is increased for hours by a short 380 nm illumination and switched off (20-fold decreased) by blue or green light. switch-Cyclop1 is very light-sensitive and can half-maximally be activated by ~ 150 photons/nm2 of 380 nm (~ 73 J/m2) or inhibited by ~ 40 photons/nm\(^2\) of 473 nm (~ 18 J/m\(^2\)).
Conclusions
This engineered guanylyl cyclase is the first light-switchable enzyme for cGMP level regulation. Light-regulated cGMP production with high light-sensitivity is a promising technique for the non-invasive investigation of the effects of cGMP signaling in many different tissues.
Whereas the role of calcium ions (Ca\(^{2+}\)) in plant signaling is well studied, the physiological significance of pH‐changes remains largely undefined.
Here we developed CapHensor, an optimized dual‐reporter for simultaneous Ca\(^{2+}\) and pH ratio‐imaging and studied signaling events in pollen tubes (PTs), guard cells (GCs), and mesophyll cells (MCs). Monitoring spatio‐temporal relationships between membrane voltage, Ca\(^{2+}\)‐ and pH‐dynamics revealed interconnections previously not described.
In tobacco PTs, we demonstrated Ca\(^{2+}\)‐dynamics lag behind pH‐dynamics during oscillatory growth, and pH correlates more with growth than Ca\(^{2+}\). In GCs, we demonstrated abscisic acid (ABA) to initiate stomatal closure via rapid cytosolic alkalization followed by Ca2+ elevation. Preventing the alkalization blocked GC ABA‐responses and even opened stomata in the presence of ABA, disclosing an important pH‐dependent GC signaling node. In MCs, a flg22‐induced membrane depolarization preceded Ca2+‐increases and cytosolic acidification by c. 2 min, suggesting a Ca\(^{2+}\)/pH‐independent early pathogen signaling step. Imaging Ca2+ and pH resolved similar cytosol and nuclear signals and demonstrated flg22, but not ABA and hydrogen peroxide to initiate rapid membrane voltage‐, Ca\(^{2+}\)‐ and pH‐responses.
We propose close interrelation in Ca\(^{2+}\)‐ and pH‐signaling that is cell type‐ and stimulus‐specific and the pH having crucial roles in regulating PT growth and stomata movement.
Ants belong to the most successful insects living on our planet earth. One criterion of their tremendous success is the division of labor among workers that can be related to age (age¬– or temporal polyethism) and/ or body size (size–related polymorphism). Young ants care for the queen and brood in the nest interior and switch to foraging tasks in the outside environment with ongoing age. This highly flexible interior–exterior transition probably allows the ant workers to properly match the colony needs and is one of the most impressive behaviors a single worker undergoes during its life. As environmental stimuli are changing with this transition, workers are required to perform a new behavioral repertoire. This requires significant adaptions in sensory and higher¬–order integration centers in the brain, like the mushroom bodies. Furthermore, foragers need proper time measuring mechanisms to cope with daily environmental changes and to adapt their own mode of life. Therefore, they possess a functional endogenous clock that generates rhythms with a period length of approximately 24 hours. The species–rich genus of Camponotus ants constitute a rewarding model to study how behavioral duties of division of labor were performed and modulated within the colony and how synaptic plasticity in the brain is processed, as they can divide their labor to both, age and body size, simultaneously.
In my PhD thesis, I started to investigate the behavioral repertoire (like foraging and locomotor activity) of two sympatric Camponotus species, C. mus and C. rufipes workers under natural and under controlled conditions. Furthermore, I focused on the division of labor in C. rufipes workers and started to examine structural and ultrastructural changes of neuronal architectures in the brain that are accompanied by the interior–exterior transition of C. rufipes ants.
In the first part of my thesis, I started to analyze the temporal organization of task allocation throughout the life of single C. rufipes workers. Constant video–tracking of individually labeled workers for up to 11 weeks, revealed an age–related division of labor of interior and exterior workers. After emergence, young individuals are tended to by older ones within the first 48 hours of their lives before they themselves start nurturing larvae and pupae. Around 52% switch to foraging duties at an age of 14–20 days. The workers that switched to foraging
tasks are mainly media–sized workers and seem to be more specialized than nurses. Variations in proportion and the age of switching workers between and within different subcolonies indicate how highly flexible and plastic the age–related division of labor occurs in this ant species. Most of the observed workers were engaged in foraging tasks exclusively during nighttime. As the experiments were conducted in the laboratory, they are completely lacking environmental stimuli of the ants´ natural habitat.
I therefore asked in a second study, how workers of the two closely related Camponotus species, C. rufipes and C. mus, adapt their daily activity patterns (foraging and locomotor activity) under natural (in Uruguay, South America) and controlled (in the laboratory) conditions to changing thermal conditions. Monitoring the foraging activity of both Camponotus species in a field experiment revealed, that C. mus workers are exclusively diurnal, whereas C. rufipes foragers are predominantly nocturnal. However, some nests showed an elevated daytime activity, which could be an adaption to seasonally cold night temperatures. To further investigate the impact of temperature and light on the differing foraging activity patterns in the field, workers of both Camponotus species were artificially exposed to different thermal regimes in the laboratory, simulating local winter and summer conditions. Here again, C. mus workers display solely diurnal locomotor activity, whereas workers of C. rufipes shifted their locomotor activity from diurnal under thermal winter conditions to nocturnal under thermal summer conditions. Hence, the combination of both, field work and laboratory studies, shows that daily activity is mostly shaped by thermal conditions and that temperature cycles are not just limiting foraging activity but can be used as zeitgeber to schedule the outside activities of the nests.
Once an individual worker switches from indoor duties to exterior foraging tasks, it is confronted with an entirely new set of sensory information. To cope with changes of the environmental conditions and to facilitate the behavioral switch, workers need a highly flexible and plastic neuronal system. Hence, my thesis further focuses on the underlying neuronal adaptations of the visual system, including the optic lobes as the primary visual neuropil and the mushroom bodies as secondary visual brain neuropil, that are accompanied with the behavioral switch from nursing to foraging. The optic lobes as well as the mushroom bodies of light–deprived workers show an `experience–independent´ volume increase during the first two weeks of adulthood. An additional light exposure for 4 days induces an `experience–dependent´ decrease of synaptic complexes in the mushroom body collar,
followed by an increase after extended light exposure for 14 days. I therefore conclude, that the plasticity of the central visual system represents important components for the optimal timing of the interior–exterior transitions and flexibility of the age–related division of labor. These remarkable structural changes of synaptic complexes suggest an active involvement of the mushroom body neuropil in the lifetime plasticity that promotes the interior–exterior transition of Camponotus rufipes ants. Beside these investigations of neuronal plasticity of synaptic complexes in the mushroom bodies on a structural level, I further started to examine mushroom body synaptic structures at the ultrastructural level. Until recently, the detection of synaptic components in projection neuron axonal boutons were below resolution using classical Transmission Electron Microscopy. Therefore, I started to implement Electron Tomography to increase the synaptic resolution to understand architectural changes in neuronal plasticity process. By acquiring double tilt series and consecutive computation of the acquired tilt information, I am now able to resolve individual clear–core and dense–core vesicles within the projection neuron cytoplasm of C. rufipes ants. I additionally was able to reveal single postsynaptic Kenyon cell dendritic spines (~62) that surround one individual projection neuron bouton. With this, I could reveal first insights into the complex neuronal architecture of single projection neuron boutons in the olfactory mushroom body lip region. The high resolution images of synaptic architectures at the ultrastructural level, received with Electron Tomography would promote the understanding of architectural changes in neuronal plasticity.
In my PhD thesis, I demonstrate that the temporal organization within Camponotus colonies involves the perfect timing of different tasks. Temperature seems to be the most scheduling abiotic factors of foraging and locomotor activity. The ants do not only need to adapt their behavioral repertoire in accordance to the interior–exterior switch, also the parts in the peripheral and central that process visual information need to adapt to the new sensory environment.
Farmland tree cultivation is considered an important option for enhancing wood production. In South India, the native leaf-deciduous tree species Melia dubia is popular for short-rotation plantations. Across a rainfall gradient from 420 to 2170 mm year\(^{–1}\), we studied 186 farmland woodlots between one and nine years in age. The objectives were to identify the main factors controlling aboveground biomass (AGB) and growth rates. A power-law growth model predicts an average stand-level AGB of 93.8 Mg ha\(^{–1}\) for nine-year-old woodlots. The resulting average annual AGB increment over the length of the rotation cycle is 10.4 Mg ha\(^{–1}\) year\(^{–1}\), which falls within the range reported for other tropical tree plantations. When expressing the parameters of the growth model as functions of management, climate and soil variables, it explains 65% of the variance in AGB. The results indicate that water availability is the main driver of the growth of M. dubia. Compared to the effects of water availability, the effects of soil nutrients are 26% to 60% smaller. We conclude that because of its high biomass accumulation rates in farm forestry, M. dubia is a promising candidate for short-rotation plantations in South India and beyond.
Protein purification is the vital basis to study the function, structure and interaction of proteins. Widely used methods are affinity chromatography-based purifications, which require different chromatography columns and harsh conditions, such as acidic pH and/or adding imidazole or high salt concentration, to elute and collect the purified proteins. Here we established an easy and fast purification method for soluble proteins under mild conditions, based on the light-induced protein dimerization system improved light-induced dimer (iLID), which regulates protein binding and release with light. We utilize the biological membrane, which can be easily separated by centrifugation, as the port to anchor the target proteins. In Xenopus laevis oocyte and Escherichia coli, the blue light-sensitive part of iLID, AsLOV2-SsrA, was targeted to the plasma membrane by different membrane anchors. The other part of iLID, SspB, was fused with the protein of interest (POI) and expressed in the cytosol. The SspB-POI can be captured to the membrane fraction through light-induced binding to AsLOV2-SsrA and then released purely to fresh buffer in the dark after simple centrifugation and washing. This method, named mem-iLID, is very flexible in scale and economic. We demonstrate the quickly obtained yield of two pure and fully functional enzymes: a DNA polymerase and a light-activated adenylyl cyclase. Furthermore, we also designed a new SspB mutant for better dissociation and less interference with the POI, which could potentially facilitate other optogenetic manipulations of protein–protein interaction.
The technique to manipulate cells or living animals by illumination after gene transfer of light-sensitive proteins is called optogenetics. Successful optogenetics started with the use of the light-gated cation channel channelrhodopsin-2 (ChR2). After early demonstrations of the power of ChR2, further light-sensitive ion channels and ion pumps were recruited to the optogenetic toolbox. Furthermore, mutations and chimera of ChR2 improved its versatility.
However, there is still a need for improved optogenetic tools, e.g. with higher permeability for calcium or better expression in the plasma membrane. In this thesis, my work focuses on the design of highly functional channelrhodopsins with enhanced Na+ and Ca2+ conductance.
First, I tested different N-terminal signal peptides to improve the plasma membrane targeting of Channelrhodopsins. We found that a N-terminal peptide, named LR, could improve the plasma membrane targeting of many rhodopsins. Modification with LR contributed to three to ten-fold larger photocurrents (than that of the original version) of multiple channelrhodopsins, like ChR2 from C. reinhardtii (CrChR2), PsChR, Chrimson, CheRiff, CeChR, ACRs, and the light-activated pump rhodopsins KR2, Jaw, HR.
Second, by introducing point mutation, I could further improve the light sensitivity and photocurrent of different channelrhodopsins. For instance, ChR2-XXM 2.0, ChR2-XXL 2.0 and PsChR D139H 2.0 exhibited hundred times larger photocurrents than wild type ChR2 and they show high light sensitivity. Also, the Ca2+ permeable channelrhodopsins PsCatCh 2.0f and PsCatCh 2.0e show very large photocurrents and fast kinetics. In addition, I also characterized a novel bi-stable CeChR (from the acidophilic green alga Chlamydomonas eustigma) with a much longer closing time.
Third, I analysed the ion selectivity of different ChRs, which provides a basis for rational selection of channelrhodopsins for different experimental purposes. I demonstrate that ChR2, Chronos, Chrimson, CheRiff and CeChR are highly proton conductive, compared with wild type PsChR. Interestingly, Chronos has the lowest potassium conductance among these channelrhodopsins. Furthermore, I found that mutation of an aspartate in TM4 of ChR2 (D156) and PsChR (D139) to histidine obviously increased both the sodium and calcium permeability while proton conductance was reduced. PsChR D139H 2.0 has the largest sodium conductance of any published channelrhodopsin variants. Additionally, I generated PsCatCh 2.0e which exhibits a ten-fold larger calcium current than the previously reported Ca2+ transporting CrChR2 mutant CatCh.
In summary, my research work
1.) described strategies for improving plasma membrane trafficking efficiency of opsins;
2.) yielded channelrhodopsins with fast kinetics or high light sensitivity;
3.) provided optogenetic tools with improved calcium and sodium conductance.
We could also improve the performance of channelrhodopsins with distinct action spectra, which will facilitate two-color neural excitation, both in-vitro and in-vivo.
Water transport through the water channels, aquaporins (AQPs), is involved in epithelial fluid secretion and absorption, cell migration, brain edema, adipocyte metabolism, and other physiological or pathological functions. Modulation of AQP function has therapeutic potential in edema, cancer, obesity, brain injury, glaucoma, etc. The function of AQPs is in response to the osmotic gradient that is formed by the concentration differences of ions or small molecules. In terms of brain edema, it is a pathophysiological condition, resulting from dysfunction of the plasma membrane that causes a disorder of intracellular ion homeostasis and thus increases intracellular fluid content. Optogenetics can be used to regulate ion transport easily by light with temporal and spatial precision. Therefore, if we control the cell ion influx, boosting the water transport through AQPs, this will help to investigate the pathological mechanisms in e.g. brain edema. To this end, I investigated the possibility for optogenetic manipulating water transport in Xenopus oocytes. The main ions in Xenopus oocyte cytoplasm are ~10 mM Na+, ~50 mM Cl- and ~100 mM K+, similar to the mammalian cell physiological condition. Three light-gated channels, ChR2-XXM 2.0 (light-gated cation channel), GtACR1 (light-gated anion channel) and SthK-bPAC (light-gated potassium channel), were used in my study to regulate ion transport by light and thus manipulate the osmotic gradient and water transport. To increase water flow, I also used coexpression of AQP1. When expressing ChR2-XXM 2.0 and GtACR1 together, mainly Na+ influx was triggered by ChR2-XXM2.0 under blue light illumination, which then made the membrane potential more positive and facilitated Cl- influx by GtACR1. Due to this inward movement of Na+ and Cl-, the osmotic gradient was formed to trigger water influx through AQP1. Large amounts of water uptake can speedily increase the oocyte volume until membrane rupture. Next, when co-expressing GtACR1 and SthK-bPAC, water efflux will be triggered with blue light because of the light-gated KCl efflux and then oocyte shrinking could be observed.
I also developed an optogenetic protein purification method based on a light-induced protein interactive system. Currently, the most common protein purification method is based on affinity chromatography, which requires different chromatography columns and harsh conditions, such as acidic pH 4.5 - 6 and/or adding imidazole or high salt concentration, to elute and collect the purified proteins. The change in conditions could influence the activity of target proteins. So, an easy and flexible protein purification method based on the photo-induced protein interactive system iLID was designed, which regulates protein binding with light in mild conditions and does not require a change of solution composition. For expression in E. coli, the blue light-sensitive part of iLID, the LOV2 domain, was fused with a membrane anchor and expressed in the plasma membrane, and the other binding partner, SspB, was fused with the protein of interest (POI), expressed in the cytosol. The plasma membrane fraction and the soluble cytosolic fraction of E. coli can be easily separated by centrifugation. The SspB-POI can be then captured to the membrane fraction by light stimulation and released to clean buffer in the dark after washing. This method does not require any specific column and functions in mild conditions, which are very flexible at scale and will facilitate extensive protein engineering and purification of proteins, sensitive to changed buffer conditions.
Stomata sind kleine Poren in der Blattoberfläche, die Pflanzen eine Anpassung ihres Wasserhaushalts an sich ändernde Umweltbedingungen ermöglichen. Die Öffnungsweite der Stomata wird durch den Turgordruck der Schließzellen bestimmt, der wiederum durch Ionenflüsse über die Membranen der Zelle reguliert wird. Ein Netzwerk von Signaltransduktionswegen sorgt dafür, dass Pflanzen die Stomabewegungen an die Umgebungsbedingungen anpassen können. Viele molekulare Komponenten dieser Signaltransduktionketten in Schließzellen von Angiospermen sind inzwischen bekannt und Calcium spielt darin als Signalmolekül eine wichtige Rolle. Weitgehend unbekannt sind dagegen die Mechanismen, die zur Erzeugung von transienten Erhöhungen der Calciumkonzentration führen. Auch die molekularen Grundlagen der Regulierung der Stomaweite in Nicht-Angiospermen-Arten sind bisher nur wenig verstanden. Um zur Aufklärung dieser Fragestellungen
beizutragen, wurden in dieser Arbeit Mechanismen zur Erhöhungen der cytosolischen Calciumkonzentration sowie elektrophysiologische Eigenschaften von Schließzellen untersucht. Der Fokus lag hierbei insbesondere auf der Visualisierung cytosolischer Calciumsignale in Schließzellen. Im ersten Teil der Arbeit wurde durch die Applikation hyperpolarisierender Spannungspulse mittels TEVC (Two Electrode Voltage Clamp) gezielt eine Erhöhung der cytosolischen Calciumkonzentration in einzelnen Schließzellen von Nicotiana tabacum ausgelöst. Um die Dynamik der cytosolischen Calciumkonzentration dabei zeitlich und räumlich hoch aufgelöst zu visualisieren, wurde simultan zu den elektrophysiologischen Messungen ein
Spinning-Disc-System für konfokale Aufnahmen eingesetzt. Während der Applikation
hyperpolarisierender Spannungspulse wurde eine transiente Vergrößerung des cytosolischen Volumens beobachtet. Diese lässt sich durch einen osmotisch getriebenen Wasserfluss erklären, der durch die Veränderung der Ionenkonzentration im Cytosol verursacht wird. Diese wiederum wird durch die spannungsabhängige Aktivierung einwärtsgleichrichtender Kaliumkanäle in der Plasmamembran der Schließzellen und durch den Kompensationsstrom der eingestochenen Mikroelektrode hervorgerufen. Mit Hilfe des calciumsensitiven Farbstoffs Fura-2 konnte gezeigt werden, dass die Erhöhung der freien cytosolischen Calciumkonzentration während der Applikation hyperpolarisierender Spannungspulse durch zwei Mechanismen verursacht wird. Der erste Mechanismus ist die Aktivierung hyperpolarisationsaktivierter, calciumpermeabler Kanäle (HACCs) in der Plasmamembran, die schon 1998 von Grabov & Blatt beschrieben wurde. Zusätzlich zu diesem Mechanismus der Calciumfreisetzung, konnte ein zweiter bislang unbekannter Mechanismus aufgedeckt werden, bei dem Calcium aus intrazellulären Speichern in das Cytosol freigesetzt wird. Dieser Mechanismus hängt mit der oben beschriebenen Vergrößerung des cytosolischen Volumens zusammen und ist wahrscheinlich durch die Änderungen der mechanischen Spannung der Membran bzw. der Osmolarität innerhalb der Zelle bedingt. Diese könnten zu einer Aktivierung mechanosensitiver, calciumpermeabler Kanäle führen.
Der zweite Teil der Arbeit beschäftigt sich mit den molekularen Grundlagen der Regulierung von Stomata in Nicht-Angiospermen. In Schließzellen von Polypodium vulgare konnten durch die Anwendung der TEVC-Technik ähnliche spannungsabhängige Ströme über die Plasmamembran gemessen werden wie in Angiospermen. Ebenso wurden durch die Applikation hyperpolarisierender Spannungspulse an Schließzellen von Polypodium und Asplenium Erhöhungen der cytosolischen Calciumkonzentration ausgelöst, die auf die Existenz spannungsabhängiger, calciumpermeabler Kanäle in der Plasmamembran
hinweisen. Die Diffusion von Fluoreszenzfarbstoffen in die Nachbarschließzellen nach der iontophoretischen Beladung in Polypodium, Asplenium, Ceratopteris und Selaginella zeigte, dass in diesen Arten eine symplastische Verbindung zwischen benachbarten Schließzellen besteht, die an Schließzellen von Angiospermen bisher nicht beobachtet werden konnte. Anhand elektronenmikroskopischer Aufnahmen von Polypodium glycyrrhiza Schließzellen konnte gezeigt werden, dass diese Verbindung wahrscheinlich durch Plasmodesmata zwischen benachbarten Schließzellen gebildet wird. Durch die Analyse der Calciumdynamik in benachbarten Schließzellen nach hyperpolarisierenden Spannungspulsen stellte sich heraus, dass die Calciumhomöostase trotz symplastischer Verbindung in beiden Schließzellen unabhängig voneinander reguliert zu werden scheint. Im Rahmen der Untersuchungen an Farnschließzellen wurde desweiteren eine Methode zur Applikation von ABA etabliert, die es erlaubt mithilfe von Mikroelektroden das Phytohormon iontophoretisch in den Apoplasten zu laden. Im Gegensatz zu den Schließzellen von Nicotiana tabacum, die auf eine so durchgeführte ABA-Applikation mit dem Stomaschluss reagierten, wurde in Polypodium vulgare auf diese Weise kein Stomaschluss ausgelöst. Da die ABA-Antwort der Farnstomata aber auch von anderen Faktoren wie Wachstumsbedingungen abhängig ist (Hõrak et al., 2017), kann eine ABA-Responsivität in dieser Farnart trotzdem nicht vollkommen ausgeschlossen werden.
Die Freisetzung von Calcium aus intrazellulären Speichern, wie sie in dieser Arbeit gezeigt wurde, könnte eine wichtige Rolle bei der Regulierung der Stomaweite spielen. Zur Aufklärung dieser Fragestellung wäre die Identifizierung der Kanäle, die an der osmotisch/mechanisch induzierten Calciumfreisetzung aus internen Speichern beteiligt sind, von großem Interesse. Weiterführende Studien an Schließzellen von Farnen könnten die physiologische Bedeutung der aus Angiospermen bekannten Ionenkanäle für die Stomabewegungen in evolutionär älteren Landpflanzen aufklären und so maßgeblich zum Verständnis der Evolution der Regulierunsgmechanismen von Stomata beitragen. Außerdem stellt sich die Frage, welche Rolle die hier gezeigte symplastische Verbindung der Nachbarschließzellen durch Plasmodesmata für die Funktion der Stomata spielt.
Optogenetics was developed in the field of neuroscience and is most commonly using light-sensitive rhodopsins to control the neural activities. Lately, we have expanded this technique into plant science by co-expression of a chloroplast-targeted β-carotene dioxygenase and an improved anion channelrhodopsin GtACR1 from the green alga Guillardia theta. The growth of Nicotiana tabacum pollen tube can then be manipulated by localized green light illumination. To extend the application of analogous optogenetic tools in the pollen tube system, we engineered another two ACRs, GtACR2, and ZipACR, which have different action spectra, light sensitivity and kinetic features, and characterized them in Xenopus laevis oocytes, Nicotiana benthamiana leaves and N. tabacum pollen tubes. We found that the similar molecular engineering method used to improve GtACR1 also enhanced GtACR2 and ZipACR performance in Xenopus laevis oocytes. The ZipACR1 performed in N. benthamiana mesophyll cells and N. tabacum pollen tubes with faster kinetics and reduced light sensitivity, allowing for optogenetic control of anion fluxes with better temporal resolution. The reduced light sensitivity would potentially facilitate future application in plants, grown under low ambient white light, combined with an optogenetic manipulation triggered by stronger green light.
Plants, as sessile organisms, gained the ability to sense and respond to biotic and abiotic stressors to survive severe changes in their environments. The change in our climate comes with extreme dry periods but also episodes of flooding. The latter stress condition causes anaerobiosis-triggered cytosolic acidosis and impairs plant function. The molecular mechanism that enables plant cells to sense acidity and convey this signal via membrane depolarization was previously unknown. Here, we show that acidosis-induced anion efflux from Arabidopsis (Arabidopsis thaliana) roots is dependent on the S-type anion channel AtSLAH3. Heterologous expression of SLAH3 in Xenopus oocytes revealed that the anion channel is directly activated by a small, physiological drop in cytosolic pH. Acidosis-triggered activation of SLAH3 is mediated by protonation of histidine 330 and 454. Super-resolution microscopy analysis showed that the increase in cellular proton concentration switches SLAH3 from an electrically silent channel dimer into its active monomeric form. Our results show that, upon acidification, protons directly switch SLAH3 to its open configuration, bypassing kinase-dependent activation. Moreover, under flooding conditions, the stress response of Arabidopsis wild-type (WT) plants was significantly higher compared to SLAH3 loss-of-function mutants. Our genetic evidence of SLAH3 pH sensor function may guide the development of crop varieties with improved stress tolerance.
Das Adapterprotein TRAF2 und seine Bedeutung für die Todesrezeptor-vermittelte Signaltransduktion
(2020)
Während die Rolle des tumor necrosis factor (TNF) receptor associated factor (TRAF)2 in der Signaltransduktion der TRAF-interagierenden Rezeptoren der TNF Receptor (TNFR)- Superfamily (TNFRSF) bereits in der Vergangenheit umfassend erforscht wurde, ist die Rolle und Funktion dieses Adapterproteins für die Signalgebung der Todesrezeptoren nicht vollständig aufgeklärt. Die unklare Funktion der Really Interesting New Gene (RING) E3 Ligase Domäne in TRAF2 und die Abhängigkeit von Caspasen für die Aktivierung des klassischen nuclear factor κB (NFκB)-Signalweges führten in dieser Arbeit zur Herstellung von CRISPR/Cas9 knockout (KO) Zellen, bei denen TRAF2 in der Kolorektalkarzinomzelllinie HCT116 als auch in den Fibrosarkomzellen HT1080 ausgeschaltet wurde. Diese Zellen wurden zuvor so modifiziert, dass die Apoptose „downstream“ der Caspase-8-Aktivierung nicht weiter induzierbar war. HCT116-Zellen exprimierten hierzu ein mutiertes Allel der Phosphoinositide 3-kinase (PI3K) und HT1080-Bcl2-TNFR2 Zellen das anti-apoptotische Protein B-cell lymphoma 2 (Bcl2).
Im Fokus dieser Arbeit waren die Todesrezeptoren TNFR1, TNF-Related Apoptosis Inducing Receptor (TRAILR)1/2 und Cluster of Differentiation(CD)95. In den TRAF2-KO Zelllinien war der alternative NFκB Signalweg konstitutiv aktiv und der TNFR1-induzierte klassische NFκB-Signalweg inhibiert. Die proinflammatorische Signalgebung in Form der Interleukin (IL)8 Produktion war in den CD95-artigen Todesrezeptoren signifikant, aber nicht vollständig, reduziert und erfolgte Caspase-8-Aktivität unabhängig. Der Effekt der TRAF2-Deletion konnte durch eine Rekonstitution von TRAF2, jedoch nicht durch eine Überexpression von TRAF1 wiederhergestellt werden.
Des Weiteren führte die TRAF2-Defizienz zu einer verstärkten Procaspase-8- Prozessierung nach Aktivierung von Todesrezeptoren, die überraschenderweise mit einer Reduktion der Caspase-8-Aktivität einherging. Die Prozessierung der Procaspase-8, jedoch nicht die Aktivierung des klassischen NFκB-Signalweges wurde vermutlich durch eine verringerte Rekrutierung von cellular inhibitor of apoptosis protein (cIAP)1 an den TNFR1 erreicht. Die Expression der anti-apoptotischen Proteine FADD-like ICE (FLICE) Inhibitory Protein (FLIP)Long(L), FLIPShort(S) und cIAP1 wurde nicht von der TRAF2-Depletion beeinflusst.
Somit konnte in dieser Arbeit ein nicht-obligatorischer Effekt von TRAF2 auf die Regulation der proinflammatorischen Todesrezeptor-vermittelten Signaltransduktion nachgewiesen werden, die durch TRAF1 nicht ersetzt werden kann. Des Weiteren wurde eine bisher nicht beschriebene, stabilisierende Wirkung von TRAF2 auf die Capsase-8-Aktivität gezeigt.
Vakuoläre PPasen (V-PPase) in Landpflanzen dienen dem Transport von Protonen in die Vakuole und dem Aufbau eines elektrochemischen Gradienten, während sie gleichzeitig durch Hydrolyse eine Anreicherung des toxischen PPi im Cytosol verhindern. Zahlreiche Publikationen bewiesen bereits positive Effekte der stabilen V-PPase-Überexpression in Pflanzen. Unter anderem zeigte die Ackerschmalwand, Tabak, Reis und Tomate eine erhöhte Biomasse und gesteigerte Stresstoleranz auf Grund einer erhöhten stabilen V-PPase Ex-pression. Um die zugrundeliegenden Prozesse ohne potenzielle pleiotropische Effekte während der Pflanzenentwicklung zu analysieren, wurden in der vorliegenden Dissertation die physiologischen Auswirkungen einer transienten V-PPase-Überexpression in Nicotiona benthamiana Blättern und die Einflussnahme von NaCl quantitativ erfasst.
Zu diesem Zweck wurden zwei endogene V-PPasen (NbVHP1 und NbVHP2) aus N. bentha-miana zunächst bioinformatisch und dann auf Transkriptionsebene mittels quantitativer Real-Time-PCR identifiziert. Die endogenen V-PPasen wurden mittels der Agrobakterien-Infiltrationstechnik transient in N. benthamiana Blättern und ihre vakuoläre Lokalisation mit Hilfe von Fluoreszenzmarkern bestätigt. Die Protonenpump-Funktion der überexprimierten NbVHPs konnte mit der Patch-Clamp-Technik anhand des vier-fach erhöhten Protonenpump-stroms in den isolierten Mesophyllvakuolen verifiziert werden. Im Zuge der elektro-physiologischen Charakterisierung der endogenen N. benthamiana V-PPasen konnte die für V-PPasen typische Sensitivität gegenüber cytosolischem Calcium bestätigt werden, welche sich bei einem erhöhten Calcium-Spiegel in einer Hemmung der Pumpströme äußerte. Ferner wurde ihre gleichartige Substrataffinität (Km von 65 µM PPi) unabhängig des vakuolären pHs zwischen 5,5 und 7,5 festgestellt. Der Vergleich dieser Ergebnisse mit analog durchgeführten Messungen an der bereits publizierten AtVHP1 von A. thaliana bestätigte die große Homo-logie der V-PPasen von Landpflanzen. Im Gegensatz zu den erwünschten Auswirkungen der stabilen V-PPase Überexpression resultierte diese starke transiente Überexpression nach drei Tagen im Absterben makroskopischer Blattbereiche. Das Ausmaß dieser Nekrosen wurde anhand des vorhandenen PhotosystemII in den transformierten Blättern mit der Puls-Amplituden-Modulations-Technik quantifiziert. Die analoge transiente Überexpression einer löslichen PPase (IPP1) führte allerdings zu keinerlei negativen Effekten für die Pflanze, wodurch die erhöhte Protonentransportaktivität im Gegensatz zur Hydrolyseaktivität der V-PPasen als Ursache des Zellsterbens verifiziert werden konnte.
Aufgrund dieser unerwarteten negativen Auswirkungen der transienten V-PPase-Überex-pression auf die Blattvitalität wurde zusätzlich die Salzstresstoleranz der Blätter untersucht. Unter Berücksichtigung des kurzen Transformations- und damit Beobachtungszeitfensters wurde ein Salzapplikationsverfahren etabliert, bei dem simultan mit der Agrobakterien-infiltration 200 mM NaCl direkt in den Blattapoplasten eingeführt wurde. Anhand einer Zu-nahme in sowohl der Transskriptmenge der V-PPase als auch des PPi-induzierten Protonen-pumptransportes über den Tonoplasten wurde gezeigt, dass die NaCl-Anwesenheit im Blatt eine erhöhte Aktivität der endogenen V-PPasen des N. benthaminan Pflanzen bewirkte. Der gleichzeitige tendenzielle Rückgang der V-ATPase-Pumpaktivität in salzbehandelten Mesophyllvakuolen lässt vermuten, dass die V-PPasen eine größere Rolle bei der Bewahrung des vakuolären pH-Wertes und der protonenmotorische Kraft (PMF) unter Salzstress ein-nimmt. Interessanterweise führte die Salzapplikation bei einer V-PPase-Überexpression zu keinen additiven negativen Effekten, sondern verhinderte sogar das Auftreten der Nekrosen. Um dieses Phänomen zu ergründen, wurde zunächst mit Hilfe von Apoplastenwaschungen und Natrium-Konzentrationsmessungen bestätigt, dass das injizierte NaCl im Blatt verblieb und von den Blattzellen aufgenommen wurde. Für weitere Studien der Ursachen der Nekrosen wurden in-vivo-pH-, Membranpotenzial- und Metabolitmessungen durchgeführt. Während in V-PPase-überexprimierenden Zellen der vakuoläre pH-Wert zu Kontrollvakuolen signifikant sank, blieb er mit zusätzlicher Salzbehandlung auf Kontrollniveau. Des Weiteren schwächte die Salzapplikation die starke Depolarisation der Plasmamembran nach V-PPase-Über-expression um mehr als die Hälfte ab. Hingegen konnten keine nennenswerten Ver-änderungen im Metabolit- und Ionengehalt des Blattgewebes bei V-PPase-Überexpression festgestellt werden. Lediglich der Natrium- und Chlorid-Spiegel waren bei salz-behandelten Blättern erwartungsgemäß erhöht. Diese Ergebnisse bekräftigten, dass der stark erhöhte V-PPase-vermittelte Protonenpumpstrom und weniger metabolische Veränderungen für die Nekrosen von V-PPase-überexprimierte Pflanzen verantwortlich ist. Diese negativen Auswirkungen werden offensichtlich durch die Salzbehandlung stark vermindert, da die Aufnahme der Salz-ionen über Protonen-Na+/K+-Antiporter wie NHX antagonistisch auf die V-PPase verursachte Protonenanreicherung und die daraus folgende Veränderung des Membran-potentials und der PMF entgegenwirkt. In diese Arbeit wurde in einem neuen Blickwinkel deutlich, dass die natürliche Expressions-kontrolle der V-PPase in ausdifferenzierten Pflanzenzellen sich den Umweltbedingungen anpasst, um das Gleich-gewicht zwischen den positiven und negativen Auswirkungen der Pumpaktivität zu halten.
Der Klimawandel geht einher mit einem Anstieg der globalen Durchschnittstemperatur und einem dadurch induzierten Wassermangel. Diese beiden abiotischen Stressfaktoren führen zu einer Reduzierung der landwirtschaftlichen Erträge und Biomassen von Kulturpflanzen. Daher ist eine Anpassung der betroffenen Pflanzenarten an das sich ändernde Klima erforderlich, um die landwirtschaftliche Produktivität in Zukunft aufrechtzuerhalten. Gegenwärtig ist unser Wissen über Strategien zur Toleranz gegenüber abiotischem Stress sowie über Genom- und Transkriptionsinformationen auf wenige Modellorganismen von Angiospermen beschränkt, so dass diese Informationen die Basis für die Forschung an Trockenheit und Hitzestress darstellen. Die Untersuchung der Stressadaption innerhalb und zwischen verschiedenen Pflanzengattungen ist von besonderer Relevanz. Vor diesem Hintergrund habe ich im Rahmen meiner Doktorarbeit die Überlebensstrategie der extremophilen Wüstenpflanze Phoenix dactylifera (Dattelpalme) im Vergleich zu zwei Mesophilen, der Kulturpflanze Hordeum vulgare (Gerste) und der Modellpflanze Arabidopsis thaliana, untersucht.
Dattelpalmen sind nicht sukkulente Wüstenpflanzen, die auch unter extremen Trocken- und Hitzebedingungen in den Wüsten der Arabischen Halbinsel wachsen und ertragreich Früchte produzieren. In Phoenix dactylifera ist bislang weder die Molekularbiologie und –physiologie der Schließzellen, vor allem der Anionenkanäle, verstanden, noch wurde der Hitzeschutz ihrer Zuckertransportproteine untersucht.
Um die stomatäre Reaktion auf das Trockenstresshormon ABA (Abscisinsäure) zu verstehen, klonierten wir die Hauptkomponenten des schnellen ABA-Signalwegs von Schließzellen und analysierten den Öffnungsmechanismus der Anionenkanäle aus der Dattelpalme und der Gerste vergleichend zu dem Anionenkanal aus Arabidopsis im heterologen Expressionssystem der Xenopus Oozyten. Beide monokotyledonen Pflanzenarten (Gerste und Dattelpalme) besitzen stomatäre Komplexe, die aus Schließzellen und Nebenzellen bestehen. Dies unterscheidet die Monokotyledonen von den Dikotyledonen, die normalerweise Stomakomplexe aufweisen, die nur aus einem Paar Schließzellen gebildet werden. Interessanterweise schlossen sich Dattelpalmen- und Gerstenstomata als Reaktion auf das Trockenstresshormon ABA nur in Gegenwart von extrazellulärem Nitrat.
Der heterolog-exprimierte Anionenkanal PdSLAC1 wird durch die ABA-Kinase PdOST1 aktiviert und diese Aktivierung wird durch die Koexpression der PP2C-Phosphatase ABI1 gehemmt. Daher wird PdSLAC1 wie seine Orthologen aus Gerste und Arabidopsis durch ein ABA-abhängiges Phosphorylierungs-/Dephosphorylierungsnetzwerk gesteuert. PdOST1 aktivierte den Anionenkanal PdSLAC1 jedoch nur in Gegenwart von extrazellulärem Nitrat - eine elektrische Eigenschaft, die PdSLAC1 mit HvSLAC1 der Gerste gemein hat, sich jedoch von AtSLAC1 unterscheidet. Angesichts der Tatsache, dass in Gegenwart von Nitrat ABA den Stomaschluss verstärkt und beschleunigt, deuten unsere Ergebnisse darauf hin, dass bei Dattelpalmen und Gerste Nitrat als Ligand zum Öffnen von SLAC1 benötigt wird. Dies initiiert die Depolarisation der Schließzellen und leitet schließlich den Stomaschluss ein, um den Wasserverlust der Pflanzen unter Trockenstressbedingungen zu minimieren.
Um die monokotyledone spezifische Nitratabhängigkeit von SLAC1 zu verstehen, führten wir ortsgerichtete Mutagenesestudien auf Basis eines 3D-Modells durch, welche zudem vergleichende Studien an Chimären von Monokotylen- und Dikotylen-SLAC1 Anionenkanälen umfassten. Unsere Struktur-Funktions-Forschung identifizierte zwei Aminosäurenreste auf der Transmembrandomäne 3 (TMD3), die eine wesentliche Rolle bei der Nitrat-abhängigen Regulierung von SLAC1 Anionenkanälen monokotyledoner Pflanzen spielen. Die phylogenetische Analyse ergab schließlich, dass während der Evolution die für Monokotlyedonen spezifische Nitrat-abhängige Regulierung erst nach der Trennung in Monokotyledonen und Dikotyledonen auftrat. Durch die Nitrat-sensitive Regulierung von SLAC1 Anionenkanälen beruht der schnelle Stomaschluss von Monokotyledonen auf dem Zusammenspiel des Trockenstresshormons ABA und dem Stickstoffhaushalt der Pflanze. Da der ABA-Signalweg von Arabidopsis umfassend untersucht wurde, könnte die Entdeckung des monokotyledonen spezifischen Nitrat-abhängigen Motivs in TMD3 nun als Stellschraube zur Verbesserung der Züchtungsprogramme dikotyledoner Nutzpflanzen dienen.
Wüstenpflanzen leiden nicht nur unter Trockenheit, sondern auch unter extremem Hitzestress. Wir konnten zeigen, dass hitzebelastete Dattelpalmen große Mengen der flüchtigen Kohlenwasserstoffverbindung Isopren (2-Methyl-1,3-Butadien) produzieren und emittieren. Durch die vorübergehende Freisetzung von Isopren kann die Pflanze die Photosynthese auch bei extremen Temperaturen betreiben. Es ist jedoch nicht bekannt, ob und wie Isopren in Hitzeperioden auch Transportprozesse durch biologische Membranen schützt. Um den Einfluss von Isopren auf den Transmembrantransport zu untersuchen, identifizierten und klonierten wir den Protonen-gekoppelten Saccharosetransporter 1 (PdSUT1) der Dattelpalme und verglichen seine elektrischen Eigenschaften mit ZmSUT1 (Zea mays Sucrose Transporter 1) im heterologen Expressionssystem der Xenopus Oozyten. Interessanterweise waren das elektrische Verhalten, die kinetischen Eigenschaften und die Temperaturabhängigkeit beider Transporter ähnlich. Die Anwendung von Isopren veränderte jedoch massiv die Affinität von ZmSUT1 zu seinem Substrat Saccharose, während die Affinität des Transporters der Dattelpalme nur schwach beeinflusst wurde. Es wird angenommen, dass die Membranfluidität unter Hitzestress erniedrigt ist, welches durch Interkalierung von Isopren mit den Fettsäureketten biologischer Membrane einhergeht. Dies und die Unempfindlichkeit von PdSUT1 gegenüber Isopren deuten darauf hin, dass der Saccharosetransporter PdSUT1 aus der Wüstenpflanze auch bei hohen Temperaturen Saccharose mit hoher Affinität transportiert. Zukünftige Studien müssen nun klären, ob der flüchtige Kohlenwasserstoff Isopren einen direkten Einfluss auf den Transporter selbst hat oder Isopren in die Membran integriert und damit indirekt die Eigenschaften von Transportproteinen beeinflusst. Unabhängig von der Wirkungsweise von Isopren sollte nicht unerwähnt bleiben, dass PdSUT1 gegenüber Isopren weniger empfindlich ist als sein Ortholog ZmSUT1 aus Mais. Dies kann auf eine Anpassung des Saccharosetransporters an die extremen Hitzeperioden und die damit einhergehende Isoprenemission von Dattelpalmen zurückzuführen sein.
Oxylipine werden in der Pflanze unter Stressbedingungen gebildet. Die dafür notwendige Oxidation von Fettsäuren wird entweder nicht-enzymatisch über Radikale wie reaktive Sauerstoffspezies (ROS) oder enzymatisch über Lipoxygenasen katalysiert. Abhängig von der Position der Oxidation in der Fettsäure entstehen dabei C13- oder C9-Oxylipine. Sehr gut erforscht sind C13-Oxylipine wie Jasmonsäure (JA), die bei biotischem Stress und Verwundung gebildet werden und bei exogener Gabe das Wurzelwachstum von Arabidopsis thaliana hemmen. Die C9-Oxylipine wie 9-Hydroxyoktadekatriensäure (9-HOT) sind erst wenig erforscht. Ziel dieser Arbeit war die Charakterisierung von Transkriptionsfaktoren, mit dem Fokus auf 9-HOT-vermittelte Signalwegen in Arabidopsis thaliana. Da bekannt ist, dass auch sie zu einer Hemmung des Wurzelwachstums führen, wurde dazu die Untersuchung des Wurzelwachstums von 10 Tage alten Keimlingen etabliert. Funktionsgewinn-Mutanten des Transkriptionsfaktors TGA5 sowie des TGA5-Zielgens CYTOCHROM P450 MONOOXYGENASE CYP81D11 zeigten auf 9-HOT ein verglichen mit Col-0 deutlich besseres Wurzelwachstum. Die AtTORF-Ex-Kollektion, eine große Sammlung an Überexpressions-Linien verschiedener Transkriptionsfaktoren, wurde hinsichtlich Wurzelwachstums auf dem Oxylipin 9-HOT analysiert. Die Gesamtheit der untersuchten Pflanzen enthielt 263 unabhängige TF-Expressions-Konstrukte. Von 6087 untersuchten Pflanzen zeigten 201 Pflanzen keine Hemmung des Wurzelwachstums auf 9-HOT. Dabei konnten 80 verschiedene Transkriptionsfaktoren identifiziert werden, deren Überexpression die Wurzelwachstums-hemmende Wirkung von 9-HOT kompensiert. Es zeigte sich eine Häufung von Transkriptionsfaktoren der ERF- (ethylene responsive factor) Familie. Die verstärkte Expression der nahe verwandten Transkriptionsfaktoren ERF106 und ERF107 ermöglichte sowohl auf 9-HOT als auch auf 9-KOT ein längeres Wurzelwachstum im Vergleich zum Wildtyp. Die Genexpression von ERF106 und ERF107 wird durch Überflutung aktiviert. Durch Überflutung wird im Wildtyp die Expression von Hypoxia-Antwort-Genen wie HRE1, SUS4 oder PDC1 induziert. In den Funktionsverlust-Mutanten sind diese Gene in der Expression aber nicht beeinflusst. Auch ist nach Überflutung im normalen Tag / Nacht-Rhythmus kein signifikanter Unterschied im Überleben zwischen Col-0 und den Mutanten erf106, erf107 und erf106xerf107 nachweisbar. Zur Identifikation möglicher Ziel-Gene von ERF106 und ERF107 wurden Transkriptom-Analysen durchgeführt. Die Funktionsverlust-Mutanten erf106, erf107 und erf106xerf107 zeigten weder im Grundzustand noch nach 4 Stunden Überflutung Veränderungen in den bekannten Hypoxia-Antwort-Genen. Die Funktionsgewinn-Mutanten von ERF106 und ERF107 zeigten in der Transkriptom-Analyse eine deutliche Aktivierung von Genen, die wichtig für Entgiftung und Stressabwehr sind. Ebenso wurden wichtige Biosynthese-Gene aus der Camalexin- und Glukosinolat-Synthese in den Funktionsgewinn-Mutanten verstärkt exprimiert. Des Weiteren konnte eine verringerte Expression von Genen beobachtet werden, die wichtig für die Regulation der Eisen-Aufnahme sind, darunter bHLH-Transkriptionsfaktoren, der Eisen-Transporter IRON REGULATED TRANSPORTER 1 (IRT1) und die Eisen-Reduktase FERRIC REDUCTION OXIDASE 2 (FRO2). Zusammenfassend wurden in dieser Arbeit durch die Untersuchung der AtTORF-Ex-Kollektion mehrere TF identifiziert, die wichtige Abwehr-Gene gegen Stress- und Vergiftung sowie bedeutende Gene im Bereich der Biosynthese und Eisenaufnahme regulieren können, um so die Antwort auf C9-Oxylipine zu beeinflussen.
Ebenso wie Tiere verfügen Pflanzen über die Fähigkeit elektrische Signale zu generieren. Dabei repräsentieren elektrische Signale – Membranpotentialänderungen an der Plasmamembran – die frühesten Antworten, welche an Pflanzenzellen im Zuge veränderter externer und intrinsischer Bedingungen beobachtet werden können. Stimuli wie Kälte, Hitze, Verwundung, Herbivorie und Pathogene, aber auch physiologische Prozesse, wie Wachstum und Bestäubung führen zur Änderung des Potentials der Plasmamembran pflanzlicher Zellen. Die meisten dieser Membranpotentialänderungen bestehen aus einer schnellen Depolarisation, gefolgt von einer Repolarisation des Membranpotentials, deren Kinetik, in Abhängigkeit des Stimulus hoch variabel sein kann. Das Wissen über die molekularen Grundlagen der Generierung und Weiterleitung elektrischer Signale in Pflanzen ist im Gegensatz zu Tieren nur wenig verstanden. Eine Ausnahme stellen ‚klassisch-erregbare‘ Pflanzen wie die Venusfliegenfalle oder die Mimose dar. In diesen Pflanzen führt ein Berührungsreiz zur Auslösung eines charakteristischen Aktionspotentials, welches in der Folge zu einer, auf differentiellen Turgoränderungen basierenden, nastischen Bewegung führt. In allen anderen Pflanzen ist die Kinetik der Membranpotentialänderungen sehr variabel, abhängig vom Stimulus und dem physiologischen Zustand der Zellen und – mit Ausnahme der Reaktion auf einen Kältestimulus – lediglich nach langen Latenzzeiten wiederholbar. Dieser Umstand verhindert eine systematische Analyse der molekularen Basis elektrischer Signale in den meisten Pflanzen. Ziel dieser Arbeit war es daher, auf der Basis des Channelrhodopsin-2 (ChR2) aus der Grünalge Chlamydomonas reinhardtii, welches bereits seit 2005 in der Neurobiologie genutzt wird, ein nicht-invasives Werkzeug zur funktionellen Analyse elektrischer Signale in Pflanzen zu etablieren. ChR2 ist ein Blaulicht-aktivierter Kationenkanal, der für seine Funktion all trans-Retinal als Cofaktor benötigt. Im Rahmen dieser Arbeit wurden verschiedene Varianten des ChR2, mit einem Schwerpunkt auf ChR2-C128T und vor allem ChR2-D156C, auch bekannt als ChR2-XXL eingesetzt. ChR2 konnte bereits durch M. Baumann im Rahmen ihrer Dissertation funktionell im transienten Expressionssystem Nicotiana benthamiana dargestellt werden. In der vorliegenden Arbeit wurde das System weiter ausgebaut und die besonders aussichtsreichen ChR2-Varianten nicht nur in N. benthamiana, sondern auch in stabilen Arabidopsis thaliana Linien funktionell charakterisiert. Dabei konnte mit dem ChR2-XXL ein geeignetes optogenetisches Werkzeug zur Untersuchung elektrischer Signale in Pflanzen identifiziert werden. ChR2-XXL bietet die Möglichkeit das Membranpotential durch kurze, 5 s Blaulichtpulse im Mittel um 95 mV zu depolarisieren und im Anschluss die Repolarisationsphase zu untersuchen. Blaulicht-induzierbare, ChR2-XXL-vermittelte Depolarisationen konnten, reproduzierbar und beliebig oft an den gleichen Zellen wiederholt ausgelöst werden. Dadurch ermöglicht ChR2-XXL die bisher nur unzureichend bekannten molekularen Komponenten der Repolarisation des Membranpotentials in Pflanzen zu erforschen. In tierischen Zellen generieren spannungsabhängige Natriumkanäle die Depolarisation, während spannungsabhängige Kaliumkanäle die Depolarisationskinetik bestimmen. Die im Vergleich zu tierischen Zellen veränderten Ionengradienten lassen vermuten, dass die pflanzliche Depolarisation im Wesentlichen durch Ca2+-abhängige Anionenkanäle vermittelt wird, die durch den Efflux von Cl- das Membranpotential depolarisieren. Für die Repolarisation wird zum einen die Beteiligung von auswärtsgleichrichtenden Kaliumkanälen postuliert. Zum anderen wird auch eine Beteiligung der Plasmamembran (PM) H+-ATPasen vermutet, welche gleichzeitig einen essentiellen Beitrag zur Generierung des Ruhepotentials leisten. In der vorliegenden Arbeit wurde es durch den Einsatz von ChR2-XXL möglich, beide potentiellen Komponenten der Repolarisationsphase, Kaliumkanäle und PM H+-ATPasen, erstmals durch eine nicht-invasive, Anionen-unabhängige Methode der Depolarisation zu untersuchen. Durch den Einsatz von Mutanten und Kaliumkanalinhibitoren konnte ein möglicher Beitrag des auswärtsgleichrichtenden Kaliumkanals Arabidopsis thaliana GUARD CELL OUTWARD RECTIFYING K+ CHANNEL (AtGORK) an der Repolarisationsphase in Arabidopsis Mesophyllzellen nahezu ausgeschlossen werden. Der auswärtsgleichrichtende Kaliumkanal GORK öffnet erst bei Membranpotentialen positiv vom Gleichgewichtspotential für Kaliumionen (EK (-118 mV)). Da die ChR2-induzierbaren Depolarisationen ebenso wie viele natürliche Stimuli, diesen Wert kaum erreichen oder nur geringfügig überschreiten, leistet der GORK einen geringfügigen Beitrag bei der Repolarisation. Dies ließ vermuten, dass die Repolarisation von EK bis zum Ruhepotential bei ca. -180 mV dagegen möglicherweise durch die PM H+-ATPasen bewerkstelligt wird. Die Wirkung des PM H+-ATPase Inhibitors Natriumorthovanadat, sowie des PM H+-ATPase Aktivators Fusicoccin auf die Repolarisationsphase konnten diese Hypothese unterstützen. Die Hemmung der PM H+-ATPasen verlangsamte die Repolarisationskinetik während eine Aktivierung der PM H+-ATPasen diese beschleunigte. So wurde es erstmals möglich den genauen Einfluss der PM H+-ATPasen auf Wiederherstellung des Membranpotentials während der Repolarisation in Mesophyllzellen zu studieren. Darüber hinaus wurde beobachtet, dass in Gegenwart des Kaliumkanalblockers Ba2+ die Repolarisation ebenfalls beschleunigt werden konnte. In Übereinstimmung mit dem ‚Pump-and-Leak‘-Modell (Alberts et al. 2002) deutet dies darauf hin, dass schwach einwärtsgleichrichtende Kaliumkanäle, wie der ARABIDOPSIS K+ TRANSPORTER 2 (AKT2) dem PM H+-ATPasen Protonengradienten entgegenwirken und somit das Ruhepotential aus der Summe der bewegten Ladungen von Pumpen und Kaliumkanälen bestimmt wird. Das mögliche Potenzial optogenetischer, Rhodopsin-basierter Werkzeuge für die molekulare Analyse elektrischer Signale, insbesondere unter Einsatz der breiten Palette lichtgesteuerter Pumpen und Kanäle, ihrer spektralen Diversität und ihrer Einkreuzung in ausgewählte Arabidopsis Mutanten wird diskutiert.
Fungal endophytes of the genus Epichloë live symbiotically in cool season grass species and can produce alkaloids toxic to insects and vertebrates, yet reports of intoxication of grazing animals have been rare in Europe in contrast to overseas. However, due to the beneficial resistance traits observed in Epichloë infected grasses, the inclusion of Epichloë in seed mixtures might become increasingly advantageous. Despite the toxicity of fungal alkaloids, European seed mixtures are rarely tested for Epichloë infection and their infection status is unknown for consumers. In this study, we tested 24 commercially available seed mixtures for their infection rates with Epichloë endophytes and measured the concentrations of the alkaloids ergovaline, lolitrem B, paxilline, and peramine. We detected Epichloë infections in six seed mixtures, and four contained vertebrate and insect toxic alkaloids typical for Epichloë festucae var. lolii infecting Lolium perenne. As Epichloë infected seed mixtures can harm livestock, when infected grasses become dominant in the seeded grasslands, we recommend seed producers to test and communicate Epichloë infection status or avoiding Epichloë infected seed mixtures.
Soil salinity is a major environmental constraint affecting crop growth and threatening global food security. Plants adapt to salinity by optimizing the performance of stomata. Stomata are formed by two guard cells (GCs) that are morphologically and functionally distinct from the other leaf cells. These microscopic sphincters inserted into the wax-covered epidermis of the shoot balance CO\(_2\) intake for photosynthetic carbon gain and concomitant water loss. In order to better understand the molecular mechanisms underlying stomatal function under saline conditions, we used proteomics approach to study isolated GCs from the salt-tolerant sugar beet species. Of the 2088 proteins identified in sugar beet GCs, 82 were differentially regulated by salt treatment. According to bioinformatics analysis (GO enrichment analysis and protein classification), these proteins were involved in lipid metabolism, cell wall modification, ATP biosynthesis, and signaling. Among the significant differentially abundant proteins, several proteins classified as “stress proteins” were upregulated, including non-specific lipid transfer protein, chaperone proteins, heat shock proteins, inorganic pyrophosphatase 2, responsible for energized vacuole membrane for ion transportation. Moreover, several antioxidant enzymes (peroxide, superoxidase dismutase) were highly upregulated. Furthermore, cell wall proteins detected in GCs provided some evidence that GC walls were more flexible in response to salt stress. Proteins such as L-ascorbate oxidase that were constitutively high under both control and high salinity conditions may contribute to the ability of sugar beet GCs to adapt to salinity by mitigating salinity-induced oxidative stress.
The carbohydrate D-glucose is the main source of energy in living organisms. In contrast to animals, as well as most fungi, bacteria, and archaea, plants are capable to synthesize a surplus of sugars characterizing them as autothrophic organisms. Thus, plants are de facto the source of all food on earth, either directly or indirectly via feed to livestock. Glucose is stored as polymeric glucan, in animals as glycogen and in plants as starch. Despite serving a general source for metabolic energy and energy storage, glucose is the main building block for cellulose synthesis and represents the metabolic starting point of carboxylate- and amino acid synthesis. Finally yet importantly, glucose functions as signalling molecule conveying the plant metabolic status for adjustment of growth, development, and survival. Therefore, cell-to-cell and long-distance transport of photoassimilates/sugars throughout the plant body require the fine-tuned activity of sugar transporters facilitating the transport across membranes. The functional plant counterparts of the animal sodium/glucose transporters (SGLTs) are represented by the proton-coupled sugar transport proteins (STPs) of the plant monosaccharide transporter(-like) family (MST). In the framework of this special issue on “Glucose Transporters in Health and Disease,” this review gives an overview of the function and structure of plant STPs in comparison to the respective knowledge obtained with the animal Na+-coupled glucose transporters (SGLTs).
The origins of multicellular physiology are tied to evolution of gene expression. Genes can shift expression as organisms evolve, but how ancestral expression influences altered descendant expression is not well understood. To examine this, we amalgamate 1,903 RNA-seq datasets from 182 research projects, including 6 organs in 21 vertebrate species. Quality control eliminates project-specific biases, and expression shifts are reconstructed using gene-family-wise phylogenetic Ornstein-Uhlenbeck models. Expression shifts following gene duplication result in more drastic changes in expression properties than shifts without gene duplication. The expression properties are tightly coupled with protein evolutionary rate, depending on whether and how gene duplication occurred. Fluxes in expression patterns among organs are nonrandom, forming modular connections that are reshaped by gene duplication. Thus, if expression shifts, ancestral expression in some organs induces a strong propensity for expression in particular organs in descendants. Regardless of whether the shifts are adaptive or not, this supports a major role for what might be termed preadaptive pathways of gene expression evolution.
Using Expansion Microscopy to Visualize and Characterize the Morphology of Mitochondrial Cristae
(2020)
Mitochondria are double membrane bound organelles indispensable for biological processes such as apoptosis, cell signaling, and the production of many important metabolites, which includes ATP that is generated during the process known as oxidative phosphorylation (OXPHOS). The inner membrane contains folds called cristae, which increase the membrane surface and thus the amount of membrane-bound proteins necessary for the OXPHOS. These folds have been of great interest not only because of their importance for energy conversion, but also because changes in morphology have been linked to a broad range of diseases from cancer, diabetes, neurodegenerative diseases, to aging and infection. With a distance between opposing cristae membranes often below 100 nm, conventional fluorescence imaging cannot provide a resolution sufficient for resolving these structures. For this reason, various highly specialized super-resolution methods including dSTORM, PALM, STED, and SIM have been applied for cristae visualization. Expansion Microscopy (ExM) offers the possibility to perform super-resolution microscopy on conventional confocal microscopes by embedding the sample into a swellable hydrogel that is isotropically expanded by a factor of 4–4.5, improving the resolution to 60–70 nm on conventional confocal microscopes, which can be further increased to ∼ 30 nm laterally using SIM. Here, we demonstrate that the expression of the mitochondrial creatine kinase MtCK linked to marker protein GFP (MtCK-GFP), which localizes to the space between the outer and the inner mitochondrial membrane, can be used as a cristae marker. Applying ExM on mitochondria labeled with this construct enables visualization of morphological changes of cristae and localization studies of mitochondrial proteins relative to cristae without the need for specialized setups. For the first time we present the combination of specific mitochondrial intermembrane space labeling and ExM as a tool for studying internal structure of mitochondria.
In Brassicaceae, tissue damage triggers the mustard oil bomb i.e., activates the degradation of glucosinolates by myrosinases leading to a rapid accumulation of isothiocyanates at the site of damage. Isothiocyanates are reactive electrophilic species (RES) known to covalently bind to thiols in proteins and glutathione, a process that is not only toxic to herbivores and microbes but can also cause cell death of healthy plant tissues. Previously, it has been shown that subtoxic isothiocyanate concentrations can induce transcriptional reprogramming in intact plant cells. Glutathione depletion by RES leading to breakdown of the redox potential has been proposed as a central and common RES signal transduction mechanism. Using transcriptome analyses, we show that after exposure of Arabidopsis seedlings (grown in liquid culture) to subtoxic concentrations of sulforaphane hundreds of genes were regulated without depletion of the cellular glutathione pool. Heat shock genes were among the most highly up-regulated genes and this response was found to be dependent on the canonical heat shock factors A1 (HSFA1). HSFA1-deficient plants were more sensitive to isothiocyanates than wild type plants. Moreover, pretreatment of Arabidopsis seedlings with subtoxic concentrations of isothiocyanates increased resistance against exposure to toxic levels of isothiocyanates and, hence, may reduce the autotoxicity of the mustard oil bomb by inducing cell protection mechanisms.
The plant hormone jasmonoyl-isoleucine (JA-Ile) is an important regulator of plant growth and defense in response to various biotic and abiotic stress cues. Under our experimental conditions, JA-Ile levels increased approximately seven-fold in NaCl-treated Arabidopsis thaliana roots. Although these levels were around 1000-fold lower than in wounded leaves, genes of the JA-Ile signaling pathway were induced by a factor of 100 or more. Induction was severely compromised in plants lacking the JA-Ile receptor CORONATINE INSENSITIVE 1 or enzymes required for JA-Ile biosynthesis. To explain efficient gene expression at very low JA-Ile levels, we hypothesized that salt-induced expression of the JA/JA-Ile transporter JAT1/AtABCG16 would lead to increased nuclear levels of JA-Ile. However, mutant plants with different jat1 alleles were similar to wild-type ones with respect to salt-induced gene expression. The mechanism that allows COI1-dependent gene expression at very low JA-Ile levels remains to be elucidated.
Blumeria graminis, the obligate biotrophic grass powdery mildew, is a highly pathogenic fungus capable of inflicting foliar diseases and of causing severe yield losses. There is asexual and sexual propagation in the life cycle of B. graminis. In the epidemiological processes of this pathogen, both types of spores - asexual conidia and sexual ascospores – are crucial.
Conidia of B. graminis are demonstrated to perceive cuticular very-long-chain aldehydes as molecular signal substances notably promoting germination and differentiation of the infection structure (the appressorium) – the prepenetration processes – in a concentration- and chain-length-dependent manner. Conidial germination and appressorium formation are known to be dramatically impeded by the presence of free water on the host surface. However, sexually formed ascospores are reported to easily germinate immersed in water. There are abundant assays on conidial prepenetration processes. However, with respect to the stimulating effects of very-long-chain aldehydes and to the influence of the presence of free water, ascosporic prepenetration processes are still obscure.
In order to study the effects of very-long-chain aldehydes on the ascosporic prepenetration processes of wheat powdery mildew fungus B. graminis f. sp. tritici, Formvar®-based in vitro systems were applied to exclude the secondary host effects (such as host resistance) and to reproducibly provide homogeneous hydrophobic substratum surfaces. By the presence of even-numbered very-long-chain aldehydes (C22 - C30), the appressorium formation of the ascospores was notably triggered in a chain-length dependent manner. N-octacosanal (C28) was the most inducing aldehyde tested. Unlike conidia, ascospores could easily differentiate immersed in water and showed a more variable differentiation pattern even with a single germ tube differentiating an appressorium.
To evaluate the alternative management against barley powdery mildew fungus Blumeria graminis f. sp. hordei, the suppressing effects of UV-C irradiation on the developmental processes of conidia on artificial surfaces (in vitro) and on host leaf surfaces (in vivo) were assayed. In vitro and in vivo, a single dose of 100 J m-2 UV-C was adequate to decrease conidial germination to < 20 % and to reduce appressorium formation to values < 5 %. UV-C irradiation negatively affected colony pustule size and vegetative propagation. Under photoperiodic conditions of 2h light/16h dark, 6h dark/12h light or 6h dark/18h light, UV-C-treated conidia showed photoreactivation (photo-recovery). White light-mediated photoreactivation was most effective immediately after UV-C irradiation, suggesting that a prolonged phase of darkness after UV-C application increased the efficacy of management against B. graminis. UV-C irradiation increased transcript levels of three putative photolyase genes in B. graminis, indicating those were probably involved in photoreactivation processes. However, mere white light or blue light (wavelength peak, 475 nm) could not induce the up-regulation of these genes.
To determine whether visible light directly impacted the prepenetration and penetration processes of this powdery mildew pathogen, conidia of Blumeria graminis f. sp. hordei and Blumeria graminis f. sp. tritici were inoculated onto artificial surfaces and on host leaf surfaces. Samples were analyzed after incubation periods under light conditions (white light intensity and spectral quality). Increasing white light intensities directly impaired conidial prepenetration processes in vitro but not in vivo. Applying an agar layer under the wax membrane compensated for conidial water loss as a consequence of high white light irradiation. Light stimulated in vitro and in vivo the appressorium elongation of B. graminis in a wavelength-dependent manner. Red light was more effective to trigger the elongation of appressorium than blue light or green light assayed.
Taken together, the findings of this study demonstrate that 1) a host surface recognition principle based on cuticular very-long-chain aldehydes is a common feature of B. graminis f. sp. tritici ascospores and conidia; 2) the transcriptional changes of three putative photolyase genes in B. graminis are mediated in a UV-C-dependent manner; 3) light directly affected the (pre)penetration processes of B. graminis.
Plant transpiration is a key element in the hydrological cycle. Widely used methods for its assessment comprise sap flux techniques for whole-plant transpiration and porometry for leaf stomatal conductance. Recently emerging approaches based on surface temperatures and a wide range of machine learning techniques offer new possibilities to quantify transpiration. The focus of this study was to predict sap flux and leaf stomatal conductance based on drone-recorded and meteorological data and compare these predictions with in-situ measured transpiration. To build the prediction models, we applied classical statistical approaches and machine learning algorithms. The field work was conducted in an oil palm agroforest in lowland Sumatra. Random forest predictions yielded the highest congruence with measured sap flux (r\(^2\) = 0.87 for trees and r\(^2\) = 0.58 for palms) and confidence intervals for intercept and slope of a Passing-Bablok regression suggest interchangeability of the methods. Differences in model performance are indicated when predicting different tree species. Predictions for stomatal conductance were less congruent for all prediction methods, likely due to spatial and temporal offsets of the measurements. Overall, the applied drone and modelling scheme predicts whole-plant transpiration with high accuracy. We conclude that there is large potential in machine learning approaches for ecological applications such as predicting transpiration.
While much research has addressed the aboveground response of trees to climate warming and related water shortage, not much is known about the drought sensitivity of the fine root system, in particular of mature trees. This study investigates the response of topsoil (0–10 cm) fine root biomass (FRB), necromass (FRN), and fine root morphology of five temperate broadleaf tree species (Acer platanoides L., Carpinus betulus L., Fraxinus excelsior L., Quercus petraea (Matt.) Liebl., Tilia cordata Mill.) to a reduction in water availability, combining a precipitation gradient study (nine study sites; mean annual precipitation (MAP): 920–530 mm year\(^{−1}\)) with the comparison of a moist period (average spring conditions) and an exceptionally dry period in the summer of the subsequent year. The extent of the root necromass/biomass (N/B) ratio increase was used as a measure of the species’ belowground sensitivity to water deficits. We hypothesized that the N/B ratio increases with long-term (precipitation gradient) and short-term reductions (moist vs. dry period) of water availability, while FRB changes only a little. In four of the five species (exception: A. platanoides), FRB did not change with a reduction in MAP, whereas FRN and N/B ratio increased toward the dry sites under ample water supply (exception: Q. petraea). Q. petraea was also the only species not to reduce root tip frequency after summer drought. Different slopes of the N/B ratio-MAP relation similarly point at a lower belowground drought sensitivity of Q. petraea than of the other species. After summer drought, all species lost the MAP dependence of the N/B ratio. Thus, fine root mortality increased more at the moister than the drier sites, suggesting a generally lower belowground drought sensitivity of the drier stands. We conclude that the five species differ in their belowground drought response. Q. petraea follows the most conservative soil exploration strategy with a generally smaller FRB and more drought-tolerant fine roots, as it maintains relatively constant FRB, FRN, and morphology across spatial and temporal dimensions of soil water deficits.
SLAC/SLAH Anionenkanäle, die zur Familie der langsamen Anionenkanäle gehören, repräsentieren Schlüsselproteine in der pflanzlichen Stressantwort. Neben ihrer Aufgabe in Stresssituationen, ist eine Untergruppe der Kanäle für die Beladung der Leitgefäße mit Nitrat und Chlorid in der Stele der Pflanzenwurzeln verantwortlich. Biophysikalische und pflanzenphysiologische Studien stellten heraus, dass vor Allem der Anionenkanal SLAH3 für die Beladung der Xylem Leitgefäße mit Nitrat und Chlorid verantwortlich ist. Ihm zur Seite gestellt werden noch die elektrisch inaktiven Homologe SLAH1 und SLAH4 in der Wurzel exprimiert. Sie steuern die Aktivität von SLAH3 durch die Assemblierung zu SLAH1/SLAH3 oder SLAH3/SLAH4 Heteromeren. Neben der Kontrolle durch Heteromerisierungsereignisse, werden SLAH3 Homomere sehr spezifisch und schnell durch zytosolische Ansäuerung aktiviert. Obwohl bereits die Kristallstruktur des bakteriellen Homologs HiTehA zu pflanzlichen SLAC/SLAH Anionenkanälen bekannt ist, welche HiTehA als Trimer charakterisiert, sind die Stöchiometrie und der Polymerisierungsgrad der pflanzlichen SLAC/SLAHs bisher noch unbekannt.
Die Fluoreszenzmikroskopie umfasst viele etablierte Anwendungsmethoden, wie die konfokale Laserrastermikroskopie (CLSM), Techniken mit verbesserter Auflösung, wie die Mikroskopie mit strukturierter Beleuchtung (SIM) und hochauflösende Methoden, welche durch die Lokalisationsmikroskopie (z.B. dSTORM und PALM) oder die Expansionsmikroskopie (ExM) vertreten werden. Diese unterschiedlichen Mikroskopie-methoden ermöglichen neue Einblicke in die Organisation von Proteinen in biologischen Systemen, die bis auf die molekulare Ebene hinunterreichen. Insbesondere im Bereich der hochauflösenden Fluoreszenzmikroskopie sind im Gegensatz zu tierischen Frage-stellungen bisher jedoch nur wenige Untersuchungen in pflanzlichen Geweben durchgeführt worden.
Die Lokalisationsmikroskopie ermöglicht die Quantifizierung einzelner Moleküle in nativen Systemen und lässt überdies Rückschlüsse auf den Polymerisierungsgrad von Proteinen zu. Da Poly- und Heteromerisierung von Proteinen oftmals mit der Funktionalität eines entsprechenden Proteins einhergeht, wie es bei den SLAC/SLAH Anionenkanälen der Fall ist, wurden in dieser Arbeit PALM Messungen zur Untersuchung des Polymerisierungsgrades und Interaktionsmuster der Anionenkanäle angewendet. Ferner wurden Expressionsmuster der SLAC/SLAHs untersucht und zudem Mikroskopieanwendungen im Pflanzengewebe etabliert und verbessert.
In Bezug auf die Mikroskopieanwendungen konnten wir in Arabidopsis thaliana (At) Wurzeln die polare Verteilung von PIN Proteinen mittels SIM bestätigen und die gruppierte Verteilung in der Plasmamembran am Zellpol auflösen. In Wurzel-querschnitten war es möglich, Zellwände zu vermessen, den Aufbau der Pflanzenwurzel mit den verschiedenen Zelltypen zu rekonstruieren und diesen in Zusammenhang mit Zellwanddicken zu bringen. Anhand dieser Aufnahmen ließ sich die Auflösungsgrenze eines SIM-Mikroskops bestimmen, weshalb diese Probe als Modellstruktur für Auflösungsanalysen, zur Kontrolle für die korrekte Bildverarbeitung bei hochauflösender Bildgebung und andere Fragestellungen empfohlen werden kann.
Für die Expansionsmikroskopie in pflanzlichen Proben konnten ein enzym- und ein denaturierungsbasiertes Präparationsprotokoll etabliert werden. Dabei wurden ganze At Setzlinge, Wurzelabschnitte und Blattstücke gefärbt, expandiert und mit zwei bis drei Mal verbesserter Auflösung bildlich dargestellt. In diesem Zusammenhang waren Aufnahmen ganzer Wurzel- und Blattproben mit beeindruckender Eindringtiefe und extrem geringem Hintergrundsignal möglich. Zudem wurden die Daten kritisch betrachtet, Probleme aufgezeigt, gewebespezifische Veränderungen dargestellt und limitierende Faktoren für die ExM in Pflanzenproben thematisiert.
Im Fokus dieser Arbeit stand die Untersuchung der SLAC/SLAH Proteine. SLAH2 wird in den Wurzeln vornehmlich in Endodermis- und Perizykelzellen exprimiert, was anhand verschiedener At SLAH2 YFP Mutanten untersucht werden konnte. Dies unterstützt die Annahme, dass SLAH2 bei der Beladung der Leitgefäße mit Nitrat maßgeblich beteiligt ist. Es ist denkbar, dass SLAH2 ebenfalls eine wachstumsbeeinflussende Funktion über die Regulation von Nitratkonzentrationen zugeschrieben werden kann. Darauf deuten vor allem die verstärkte Expression von SLAH2 im Bereich der Seitenwurzeln und die heterogene Expression in der Elongations-, Differenzierungs- und meristematischen Zone hin. Die Membranständigkeit von SLAH4 konnte nachgewiesen werden und FRET FLIM Untersuchungen zeigten eine hohe Affinität von SLAH4 zu SLAH3, was die beiden Homologe als Interaktionspartner identifiziert.
Für die Bestimmung des Oligomerisierungsgrades mittels PALM wurden die pflanzlichen Anionenkanäle in tierischen COS7-Zellen exprimiert. Die elektrophysiologische Funktionalität der mEOS2-SLAC/SLAH-Konstrukte wurde mit Hilfe von Patch-Clamp-Versuchen in COS7-Zellen überprüft. Um Expressionslevel, Membranständigkeit und die Verteilung über die Membran der SLAC/SLAHs zu verifizieren, wurden dSTORM-Aufnahmen herangezogen
Schließlich ermöglichten PALM-Aufnahmen die Bestimmung des Polymerisierungs-grades der SLAC/SLAH Anionenkanäle, die stöchiometrischen Veränderungen bei Heteromerisierung von SLAH3 mit SLAH1 oder SLAH4 und auch der Einfluss einer zytosolischer Ansäuerung auf den Polymerisierungsgrad von SLAH3 Homomeren. Zudem weisen die Oligomerisierungsanalysen von SLAH3 Mutanten darauf hin, dass die Aminosäuren Histidin His330 und His454 entscheidend an der pH sensitiven Regulierung von SLAH3 beteiligt sind.
Durch die erhobenen Daten konnten also entscheidende, neue Erkenntnisse über die Regulationsmechanismen von pflanzlichen Anionenkanälen auf molekularer Ebene gewonnen werden: Unter Standardbedingungen liegen SLAC1, SLAH2 und SLAH3 hauptsächlich als Dimer vor. Auf eine zytosolische Ansäuerung reagiert ausschließlich SLAH3 mit einer signifikanten stöchiometrischen Veränderung und liegt im aktiven Zustand vor Allem als Monomer vor. Der Oligomerisierungsgrad von SLAC1 und SLAH2 bleibt hingegen bei einer zytosolischen Ansäuerung unverändert. Ferner kommt es bei der Interaktion von SLAH3 mit SLAH1 oder SLAH4 zur Formierung eines Heterodimers, welches unbeeinflusst durch den zytosolischen pH bleibt. Im Gegensatz dazu bleiben die elektrisch inaktiven Untereinheiten SLAH1 und SLAH4 monomerisch und assemblieren ganz spezifisch nur mit SLAH3. Die hochauflösende Fluoreszenz-mikroskopie, insbesondere PALM erlaubt es also Heteromerisierungsereignisse und Änderungen im Poylmerisierungsgrad von Membranproteinen wie den SLAC/SLAHs auf molekularer Ebene zu untersuchen und lässt so Rückschlüsse auf physiologische Ereignisse zu.
Mycotoxins in agriculturally used plants can cause intoxication in animals and can lead to severe financial losses for farmers. The endophytic fungus Epichloë festucae var. lolii living symbiotically within the cool season grass species Lolium perenne can produce vertebrate and invertebrate toxic alkaloids. Hence, an exact quantitation of alkaloid concentrations is essential to determine intoxication risk for animals. Many studies use different methods to detect alkaloid concentrations, which complicates the comparability. In this study, we showed that alkaloid concentrations of individual plants exceeded toxicity thresholds on real world grasslands in Germany, but not on the population level. Alkaloid concentrations on five German grasslands with high alkaloid levels peaked in summer but were also below toxicity thresholds on population level. Furthermore, we showed that alkaloid concentrations follow the same seasonal trend, regardless of whether plant fresh or dry weight was used, in the field and in a common garden study. However, alkaloid concentrations were around three times higher when detected with dry weight. Finally, we showed that alkaloid concentrations can additionally be biased to different alkaloid detection methods. We highlight that toxicity risks should be analyzed using plant dry weight, but concentration trends of fresh weight are reliable.
Background
The plant endophytic fungus Serendipita indica colonizes roots of a wide range of plant species and can enhance growth and stress resistance of these plants. Due to its ease of axenic cultivation and its broad host plant range including the model plant Arabidopsis thaliana and numerous crop plants, it is widely used as a model fungus to study beneficial fungus-root interactions. In addition, it was suggested to be utilized for commercial applications, e.g. to enhance yield in barley and other species. To produce inoculum, S. indica is mostly cultivated in a complex Hill-Kafer medium (CM medium), however, growth in this medium is slow, and yield of chlamydospores, which are often used for plant root inoculation, is relatively low.
Results
We tested and optimized a simple vegetable juice-based medium for an enhanced yield of fungal inoculum. The described vegetable juice (VJ) medium is based on commercially available vegetable juice and is easy to prepare. VJ medium was superior to the currently used CM medium with respect to biomass production in liquid medium and hyphal growth on agar plates. Using solid VJ medium supplemented with sucrose (VJS), a high amount of chlamydospores developed already after 8 days of cultivation, producing significantly more spores than on CM medium. Use of VJ medium is not restricted to S. indica, as it also supported growth of two pathogenic fungi often used in plant pathology experiments: the ascomycete Fusarium graminearum, the causal agent of Fusarium head blight disease on wheat and barley, and Verticillium longisporum, the causal agent of verticillium wilt.
Conclusions
The described VJ medium is recommended for streamlined and efficient production of inoculum for the plant endophytic fungus Serendipita indica and might prove superior for the propagation of other fungi for research purposes.
The fruit fly Drosophila is a prime model in circadian research, but still little is known about its circadian regulation of metabolism. Daily rhythmicity in levels of several metabolites has been found, but knowledge about hydrophobic metabolites is limited. We here compared metabolite levels including lipids between period\(^{01}\) (per\(^{01}\)) clock mutants and Canton-S wildtype (WT\(_{CS}\)) flies in an isogenic and non-isogenic background using LC–MS. In the non-isogenic background, metabo-lites with differing levels comprised essential amino acids, kynurenines, pterinates, glycero(phospho)lipids, and fatty acid esters. Notably, detectable diacylglycerols (DAG) and acylcarnitines (AC), involved in lipid metabolism, showed lower levels in per\(^{01}\) mutants. Most of these differences disappeared in the isogenic background, yet the level differences for AC as well as DAG were consistent for fly bodies. AC levels were dependent on the time of day in WTCS in phase with food consumption under LD conditions, while DAGs showed weak daily oscillations. Two short-chain ACs continued to cycle even in constant darkness. per\(^{01}\) mutants in LD showed no or very weak diel AC oscillations out of phase with feeding activity. The low levels of DAGs and ACs in per\(^{01}\) did not correlate with lower total food consumption, body mass or weight. Clock mutant flies showed higher sensitivity to starvation independent of their background-dependent activity level. Our results suggest that neither feeding, energy storage nor mobilisation is significantly affected in per\(^{01}\) mutants, but point towards impaired mitochondrial activity, supported by upregulation of the mitochondrial stress marker 4EBP in the clock mutants
Studying how cambial age and axial height affects wood anatomical traits may improve our understanding of xylem hydraulics, heartwood formation and axial growth. Radial strips were collected from six different heights (0–11.3 m) along the main trunk of three Manchurian catalpa (Catalpa bungei) trees, yielding 88 samples. In total, thirteen wood anatomical vessel and fiber traits were observed usinglight microscopy (LM) and scanning electron microscopy (SEM), and linear models were used to analyse the combined effect of axial height, cambial age and their interaction. Vessel diameter differed by about one order of magnitude between early- and latewood, and increased significantly with both cambial age and axial height in latewood, while it was positively affected by cambial age and independent of height in earlywood. Vertical position further had a positive effect on earlywood vessel density, and negative effects on fibre wall thickness, wall thickness to diameter ratio and length. Cambial age had positive effects on the pit membrane diameter and vessel element length, while the annual diameter growth decreased with both cambial age and axial position. In contrast, early- and latewood fiber diameter were unaffected by both cambial age and axial height. We further observed an increasing amount of tyloses from sapwood to heartwood, accompanied by an increase of warty layers and amorphous deposits on cell walls, bordered pit membranes and pit apertures. This study highlights the significant effects of cambial age and vertical position on xylem anatomical traits, and confirms earlier work that cautions to take into account xylem spatial position when interpreting wood anatomical structures, and thus, xylem hydraulic functioning.
In Brassicaceae werden bei einer Gewebszerstörung unreaktive Glukosinolate durch das Enzym Myrosinase hydrolysiert. Es entstehen reaktive Substanzen wie Isothiocyanate (ITCs). Da diese Reaktion sehr schnell erfolgt wird sie auch als Senföl-Glukosid-Bombe bezeichnet. In Arabidopsis thaliana erfolgt nach Verwundung und Pathogeninfektion eine massive Akkumulation des ITCs Sulforaphan (SF), welches eine reaktive elektophile Spezies (RES) darstellt. Zu der Gruppe der RES zählen auch einige Oxylipine mit einer α,β-ungesättigten Carbonylgruppen wie 12-oxo-Phytodiensäure (OPDA) oder Phytoprostan A1 (PPA1). Die Fähigkeit der kovalenten Modifikation von Peptiden und Proteinen gilt als essentiell sowohl für die toxischen als auch die Gen-induzierenden Eigenschaften der RES. Neben ihrer Reaktivität spielt auch die Lipophilie eine Rolle für die Fähigkeit über Membranen zu diffundieren und unspezifisch an Proteine zu binden.
Die in der vorliegenden Arbeit durchgeführten Transkriptomanalysen an Arabidopsis-Keimlingen mit sub-toxischen Konzentrationen von SF, Benzylisothiocyanat (BITC) und dem Oxylipin Prostaglandin A1 (PGA1) zeigten, dass strukturell sehr verschiedene RES einen gemeinsamen Satz von 55 Genen induzieren. Unter diesen befanden sich verschiedene Hitzeschock-, Stressassoziierte- und Detoxifizierungsgene. Diese Ergebnisse deuten darauf hin, dass die Aktivierung über eine Muster-spezifische Erkennung der RES erfolgt. Als einen möglichen Mechanismus der RES-vermittelten Geninduktion wird die Regulation durch die Veränderung des zellulären Redox-Potentials als Folge kovalenter Modifikation von GSH durch RES diskutiert. Die Untersuchung der GSH-Gehalte sowie des Redox-Potential nach Behandlung mit sub-toxischen RES-Konzentrationen in Arabidopsis-Keimlingen zeigte jedoch unter den getesteten Bedingungen keine Veränderung.
Neben dem Erkennungs- und Signaltransduktionsmechanismus ist auch die biologische Bedeutung von RES für die Vermittlung einer Stresstoleranz noch weitgehend unklar. Durch die Untersuchung der Genexpression in Arabidopsis-Pflanzen nach Verwundung konnte gezeigt werden, dass eine wundinduzierte Akkumulation von SF zur Induktion einiger Gene der Hitzeschockreaktion (HSR) im Wildtyp, jedoch nicht in der myrosinase-defiziten tgg1tgg2-Mutante führte. Auch in der Transkriptomanalyse war nach RES-Gabe ebenfalls eine starke Induktion hitze-responsiver Gene, deren Regulation über den Masterregulator dem Hitzeschock-TF A1 vermittelt wird, zu beobachten. Besonders die Induktion der HSPs, welche als Chaperone fungieren und damit Thiolgruppen von Proteinen vor Modifikation schützen können, haben vermutlich bei chemischer Intoxikation protektive Eigenschaften für die Zellen. Tatsächlich zeigte sich unter den gewählten Bedingungen die hsfa1a,b,d,e-Mutante empfindlicher gegenüber ITCs als der Wildtyp. Die Fähigkeit, eine HSR ausbilden zu können, scheint in Arabidopsis bei chemischer Intoxikation eine bedeutende Rolle zu spielen. Eine Vorbehandlung mit RES wie SF, BITC oder dem HSP90-Inhibitor Radicicol in Arabidopsis-Keimlingen konnte eine Schutzwirkung vor chemischer Intoxikation vermitteln. Dies erfolgte jedoch nicht nach Behandlung mit moderater Hitze (zwei Stunden, 37 °C). Somit scheint die HSR alleine nicht ausreichend für den Aufbau eines effektiven Schutzes vor BITC-Intoxikation zu sein.
Als metabolische Antwort von Arabidopsis-Keimlingen auf Intoxikation mit RES konnte eine konzentrationsabhängige Senkung der maximalen Quantenausbeute am Photosystem II (PSII), sowie gleichzeitig eine Akkumulation an TAG-Spezies beobachtet werden. Diese metabolische Reaktion ist in der Literatur bereits als Schutz gegen Hitzestress beschrieben. Die Bedeutung der TAG-Akkumulation nach chemischem ITC-Stress ist noch unklar.
Bei der arbuskulären Myorrhiza-Symbiose (AM) und der Wurzelknöllchen-Symbiose (RNS) handelt es sich um symbiotische Interaktionen, die einen großen Vorteil für Pflanzenwachstum und kultivierung mit sich bringen. Während bei der AM Pilze die Pflanze mit verschiedenen Nährstoffen aus dem Boden versorgen, stellen die in den Wurzelknöllchen lokalisierten Rhizobien der Pflanze fixierte Stickstoffverbindungen zur Verfügung. Folglich ist es von großem Interesse, die Entwicklung dieser Symbiosen im Detail zu verstehen.
Für die Erkennung der arbuskulären Mykorrhiza-Pilze und der Stickstoff-fixierenden Rhizobien durch die Pflanze sind lösliche symbiotische Signalmoleküle essentiell, die zu der Gruppe der Lipochitinoligosaccharide (LCOs) gehören. Während der Entwicklung der AM und der RNS erkennen die Pflanzenwurzeln diese LCOs über Lysin-Motiv-Rezeptor-ähnliche Kinasen der Plasmamembran. Eine der ersten Antworten der Wurzelzellen auf Nod-LCOs ist eine Depolarisierung des Membranpotentials. An dieser Antwort sind mit großer Wahrscheinlichkeit Anionenkanäle der Plasmamembran beteiligt, da sie auch bei Depolarisierungen als Antwort auf andere Stimuli bzw. Stressantworten involviert sind.
In Arabidopsis stellt die S-Typ-Familie eine bedeutende Gruppe von Anionenkanälen dar, die von Calcium-abhängigen Kinasen (CPKs) aktiviert werden. Da Nod-LCOs repetitive Veränderungen des zytosolischen Calcium-Levels induzieren, wurde in dieser Arbeit die Hypothese aufgestellt, dass Calcium-Signale CPKs aktivieren. CPKs sorgen im Gegenzug für die Stimulation von S-Typ-Anionenkanälen in Wurzelzellen.
Die Änderungen des Membranpotentials in M. truncatula-Wurzelhaarzellen als Antwort auf Nod- und Myc-LCOs wurden mittels intrazellulärer Mikroelektroden analysiert. Es wurde gezeigt, dass Nod-LCOs in M. truncatula-Wurzelhaarzellen eine Depolarisierung des Membranpotentials induzieren. Doch Wurzelhaarzellen reagieren nicht nur auf Nod-LCOs. So konnte in dieser Studie zum ersten Mal eine Depolarisierung als Antwort auf sulfatisierte Myc-LCOs nachgewiesen werden. Eine zweite Gruppe von Myc-LCOs, denen die Sulfatgruppe fehlt, löste keine Reaktion des Membranpotentials aus. Diese Daten deuten darauf hin, dass Wurzelhaarzellen für die Erkennung von sulfatisierten LCOs von symbiotischen Pilzen und Bakterien dasselbe Perzeptionssystem nutzen. Diese Schlussfolgerung wird von Experimenten unterstützt, in denen vor der Stimulation durch Nod-LCOs ein sulfatisierter Myc-LCO hinzugegeben wurde. Diese sukzessive Zugabe von zwei Stimuli führte zu einer einzigen Depolarisierung. Die sulfatisierten Myc-LCOs unterdrückten die Antwort des Membranpotentials auf Nod-LCOs.
Die Beziehung zwischen Nod-LCO-induzierten zytosolischen Calcium-Signalen und Änderungen des Membranpotentials wurde mit einer Kombination aus intrazellulären Mikroelektroden und Imaging eines Calcium-sensitiven Fluoreszenzfarbstoffs analysiert. In Messungen der zytosolischen Calcium-Konzentration wurde keine transiente Zunahme innerhalb der ersten vier Minuten nach der Applikation der Nod-LCOs beobachtet. Die durch Nod-LCOs induzierten Depolarisierungen traten früher auf und erreichten ihr Maximum normalerweise nach drei Minuten. Demnach geht die Depolarisierung des Membranpotentials den zytosolischen Calcium-Signalen voraus. Diese Beobachtung wurde von simultanen Messungen beider Antworten bestätigt.
Um der Möglichkeit einer Beteiligung von S-Typ-Anionenkanälen an der LCO-abhängigen Depolarisierung nachzugehen, wurden zwei in den Wurzeln exprimierte M. truncatula-Orthologe der AtSLAC1-Anionenkanal-Familie identifiziert. Die klonierten Anionenkanäle, MtSLAC1, MtSLAH2-3A und MtSLAH2-3B zeigten bei der Untersuchung in Xenopus-Oozyten die typischen Charakteristika von S-Typ-Anionenkanälen. So konnte gezeigt werden, dass MtSLAH2-3A und MtSLAH2-3B eine Proteinkinase sowie externes Nitrat zur Aktivierung benötigen. Außerdem zeichnen sie sich durch eine sehr viel höhere Permeabilität für Nitrat im Vergleich zu Chlorid aus. Ähnlich wie bei AtSLAH3 macht eine Koexpression mit AtSLAH1 genau wie eine intrazelluläre Azidifikation MtSLAH2-3A und MtSLAH2-3B zu Anionenkanälen, die unabhängig von externem Nitrat und einer Phosphorylierung durch eine Proteinkinase aktiv sind.
Weil S-Typ-Anionenkanäle eine hohe Permeabilität für Nitrat aufweisen, wurde der Einfluss von Änderungen der extrazellulären Anionenkonzentration auf die Nod-LCO-induzierte Depolarisierung analysiert. Es stellte sich heraus, dass eine Verringerung der extrazellulären Nitratkonzentration die Antwort beschleunigt. Eine Erhöhung der extrazellulären Chlorid- und Sulfatkonzentration hingegen führte zu einer Verstärkung der Depolarisierung. Diese Beobachtung spricht dafür, dass andere Anionenkanal-Typen wie ALMT-Kanäle an der Depolarisierung des Membranpotentials durch LCOs beteiligt sind.
Die Daten dieser Arbeit zeigen eine Abhängigkeit der Nod-LCO-induzierten Änderungen des Membranpotentials vom M. truncatula-Genotyp. Neben Nod-LCOs lösen auch sulfatisierte Myc-LCOs eine Depolarisierung des Membranpotentials aus. Vermutlich werden sulfatisierte Nod- und Myc-LCOs von demselben Rezeptorsystem erkannt. Die Nod-LCO-induzierte Depolarisierung ist unabhängig von Änderungen des zytosolischen Calcium-Levels. Folglich sind in die Depolarisierung keine S-Typ-Anionenkanäle involviert, die ausschließlich durch Calcium-abhängige Protein-Kinasen aktiviert werden. Interessanterweise lassen sich die MtSLAH2-3-Anionenkanäle aus M. truncatula im Gegensatz zu AtSLAH3 von Calcium-unabhängigen SnRK2/OST1-Proteinkinasen aktivieren. Dies ermöglicht die Aktivierung der MtSLAH2-3-Anionenkanäle in Abwesenheit eines Calcium-Signals.
In weiterführenden Studien sollten die Genexpressionsprofile von Calcium-unabhängigen Proteinkinasen wie SnRK2 und S-Typ-Anionenkanälen aus M. truncatula sowie deren Interaktionen untersucht werden. So könnte eine Aussage darüber getroffen werden, ob diese Proteinkinasen die Anionenkanäle MtSLAH2-3 Nod-LCO-spezifisch aktivieren. Außerdem wäre es von großem Interesse, verschiedene M. truncatula-Mutanten zu untersuchen, denen Gene für MtSLAH2-3A, MtSLAH2-3B und R-Typ-Anionenkanäle fehlen. Diese Experimente könnten zur Identifizierung von Genen führen, die an der frühen Entwicklung der Symbiose beteiligt sind und erklären, warum nur eine kleine Gruppe von Pflanzen dazu in der Lage ist, eine RNS einzugehen, während die AM im Pflanzenreich weit verbreitet ist.
Obwohl Pflanzenwurzeln mit einer Vielzahl von Pathogenen in Kontakt kommen, sind induzierbare Abwehrreaktionen der Wurzel bisher kaum beschrieben. Aufgrund der konzentrischen Zellschicht-Organisation der Wurzel wird angenommen, dass bei einer Immunantwort in jeder Zellschicht ein spezifisches genetisches Programm aktiviert wird. Eine Überprüfung dieser Hypothese war bisher wegen methodischen Limitierungen nicht möglich. Die zellschichtspezifische Expression Epitop-markierter ribosomaler Proteine erlaubt eine Affinitätsaufreinigung von Ribosomen und der assoziierten mRNA. Diese Methodik, als TRAP (Translating Ribosome Affinity Purification) bezeichnet, ermöglicht die Analyse des Translatoms und wurde dahingehend optimiert, pflanzliche Antworten auf Befall durch bodenbürtige Mikroorganismen in Rhizodermis, Cortex, Endodermis sowie Zentralzylinder spezifisch zu lokalisieren. Die Genexpression in der Arabidopsis-Wurzel nach Inokulation mit drei Bodenorganismen mit unterschiedlichen Lebensweisen wurde vergleichend betrachtet: Piriformospora indica kann als mutualistischer Pilz pflanzliches Wachstum und Erträge positiv beeinflussen, wohingegen der vaskuläre Pilz Verticillium longisporum für erhebliche Verluste im Rapsanbau verantwortlich ist und der hemibiotrophe Oomycet Phytophthora parasitica ein breites Spektrum an Kulturpflanzen befällt und Ernten zerstört. Für die Interaktionsstudien zwischen Arabidopsis und den Mikroorganismen während ihrer biotrophen Lebensphase wurden sterile in vitro-Infektionssysteme etabliert und mittels TRAP und anschließender RNA-Sequenzierung eine zellschichtspezifische, genomweite Translatomanalyse durchgeführt (Inf-TRAP-Seq). Dabei zeigten sich massive Unterschiede in der differentiellen Genexpression zwischen den Zellschichten, was die Hypothese der zellschichtspezifischen Antworten unterstützt. Die Antworten nach Inokulation mit pathogenen bzw. mutualistischen Mikroorganismen unterschieden sich ebenfalls deutlich, was durch die ungleichen Lebensweisen begründbar ist. Durch die Inf-TRAP-Seq Methodik konnte z.B. im Zentralzylinder der Pathogen-infizierten Wurzeln eine expressionelle Repression von positiven Regulatoren des Zellzyklus nachgewiesen werden, dagegen in den mit P. indica besiedelten Wurzeln nicht. Dies korrelierte mit einer Pathogen-induzierten Inhibition des Wurzelwachstums, welche nicht nach Inokulation mit P. indica zu beobachten war. Obwohl keines der drei Mikroorganismen in der Lage ist, den Zentralzylinder direkt zu penetrieren, konnte hier eine differentielle Genexpression detektiert werden. Demzufolge ist ein Signalaustausch zu postulieren, über den äußere und innere Zellschichten miteinander kommunizieren. In der Endodermis konnten Genexpressionsmuster identifiziert werden, die zu einer Verstärkung der Barriere-Funktionen dieser Zellschicht führen. So könnte etwa durch Lignifizierungsprozesse die Ausbreitung der Mikroorganismen begrenzt werden. Alle drei Mikroorganismen lösten besonders im Cortex die Induktion von Genen für die Biosynthese Trp-abhängiger, antimikrobieller Sekundärmetaboliten aus. Die biologische Relevanz dieser Verteilungen kann nun geklärt werden. Zusammenfassend konnten in dieser Dissertation erstmals die durch Mikroorganismen hervorgerufenen zellschichtspezifischen Antworten der pflanzlichen Wurzel aufgelöst werden. Vergleichende bioinformatische Analyse dieses umfangreichen Datensatzes ermöglicht nun, gezielt testbare Hypothesen zu generieren. Ein Verständnis der zellschichtspezifischen Abwehrmaßnahmen der Wurzel ist essentiell für die Entwicklung neuer Strategien zur Ertragssteigerung und zum Schutz von Nutzpflanzen gegen Pathogene in der Landwirtschaft.
Sphingobasen bilden das Grundgerüst und die Ausgangsbausteine für die Biosynthese von Sphingolipiden. Während komplexere Sphingolipide einen wichtigen Bestandteil von eukaryotischen Membranen bilden, sind Sphingobasen, die auch als long-chain bases (LCBs) bezeichnet werden, als Signalmoleküle bei zellulären Prozessen in Eukaryoten bekannt. Im tierischen System wurden antagonistische Effekte von nicht-phosphorylierten Sphingobasen (LCBs) und ihren phosphorylierten Gegenstücken (LCB-Ps) bei vielen Zellfunktionen, insbesondere der Apoptose, nachgewiesen und die zugrundeliegenden Signalwege umfassend aufgeklärt. Im Gegensatz dazu sind in Pflanzen weniger Belege für einen antagonistischen Effekt und mögliche Signaltransduktionsmechanismen bekannt. Für eine regulatorische Funktion von Sphingobasen beim programmierten Zelltod (PCD) in Pflanzen existieren mehrere Hinweise: (I) Mutationen in Genen, die den Sphingobasen-Metabolismus betreffen, führen zum Teil zu spontanem PCD und veränderten Zelltodreaktionen. (II) Die Gehalte von LCBs sind bei verschiedenen Zelltod-auslösenden Bedingungen erhöht. (III) Nekrotrophe Pathogene produzieren Toxine, wie Fumonisin B1 (FB1), die mit dem Sphingolipid-Metabolismus der Wirtspflanze interferieren, was wiederum die Ursache für den dadurch ausgelösten PCD darstellt. (IV) Die Behandlung von Pflanzen mit LCBs, nicht aber mit LCB-Ps, führt zu Zelltod.
In dieser Arbeit wurde die Rolle von Sphingobasen in der pflanzlichen Zelltodreaktion untersucht, wobei der Fokus auf der Überprüfung der Hypothese eines antagonistischen, Zelltod-hemmenden Effekts von LCB-Ps lag. Anhand von Leitfähigkeit-basierten Messungen bei Blattscheiben von Arabidopsis thaliana wurde der durch Behandlung mit LCBs und separater oder gleichzeitiger Zugabe von LCB-Ps auftretende Zelltod bestimmt. Mit dieser Art der Quantifizierung wurde der an anderer Stelle publizierte inhibierende Effekt von LCB-Ps auf den LCB-induzierten Zelltod nachgewiesen. Durch parallele Messung der Spiegel der applizierten Sphingobasen im Gewebe mittels HPLC-MS/MS konnte dieser Antagonismus allerdings auf eine reduzierte Aufnahme der LCB bei Anwesenheit der LCB-P zurückgeführt werden, was auch durch eine zeitlich getrennte Behandlung mit den Sphingobasen bestätigt wurde. Darüber hinaus wurde der Einfluss einer exogenen Zugabe von LCBs und LCB-Ps auf den durch Pseudomonas syringae induzierten Zelltod von A. thaliana untersucht. Für LCB-Ps wurde dabei kein Zelltod-hemmender Effekt beobachtet, ebenso wenig wie ein Einfluss von LCB-Ps auf den PCD, der durch rekombinante Expression und Erkennung eines Avirulenzproteins in Arabidopsis ausgelöst wurde. Für LCBs wurde dagegen eine direkte antibakterielle Wirkung im Zuge der Experimente mit P. syringae gezeigt, die den in einer anderen Publikation beschriebenen inhibierenden Effekt von LCBs auf den Pathogen-induzierten Zelltod in Pflanzen relativiert.
In weiteren Ansätzen wurden Arabidopsis-Mutanten von Enzymen des Sphingobasen-Metabolismus (LCB-Kinase, LCB-P-Phosphatase, LCB-P-Lyase) hinsichtlich veränderter in-situ-Spiegel von LCBs/LCB-Ps funktionell charakterisiert. Der Phänotyp der Mutanten gegenüber Fumonisin B1 wurde zum einen anhand eines Wachstumstests mit Keimlingen und zum anderen anhand des Zelltods von Blattscheiben bestimmt und die dabei akkumulierenden Sphingobasen quantifiziert. Die Sensitivität der verschiedenen Linien gegenüber FB1 korrelierte eng mit den Spiegeln der LCBs, während hohe Gehalte von LCB-Ps alleine nicht in der Lage waren den Zelltod zu verringern. In einzelnen Mutanten konnte sogar eine Korrelation von stark erhöhten LCB-P-Spiegeln mit einer besonderen Sensitivität gegenüber FB1 festgestellt werden.
Die Ergebnisse der vorliegenden Arbeit stellen die Hypothese eines antagonistischen Effekts von phosphorylierten Sphingobasen beim pflanzlichen Zelltod in Frage. Stattdessen konnte in detaillierten Analysen der Sphingobasen-Spiegel die positive Korrelation der Gehalte von LCBs mit dem Zelltod gezeigt werden. Die hier durchgeführten Experimente liefern damit nicht nur weitere Belege für die Zelltod-fördernde Wirkung von nicht-phosphorylierten Sphingobasen, sondern tragen zum Verständnis der Sphingobasen-Homöostase und des Sphingobasen-induzierten PCD in Pflanzen bei.
Bone Morphogenetic Proteins (BMPs) together with the Growth and Differentiation Factors (GDFs) form the largest subgroup of the Transforming Growth Factor (TGF)β family and represent secreted growth factors, which play an essential role in many aspects of cell communication in higher organisms. As morphogens they exert crucial functions during embryonal development, but are also involved in tissue homeostasis and regeneration in the adult organism. Their involvement in maintenance and repair processes of various tissues and organs made these growth factors highly interesting targets for novel pharmaceutical applications in regenerative medicine. A hallmark of the TGFβ protein family is that all of the more than 30 growth factors identified to date signal by binding and hetero-oligomerization of a very limited set of transmembrane serine-threonine kinase receptors, which can be classified into two subgroups termed type I and type II. Only seven type I and five type II receptors exist for all 30plus TGFβ members suggesting a pronounced ligand-receptor promiscuity. Indeed, many TGFβ ligands can bind the same type I or type II receptor and a particular receptor of either subtype can usually interact with and bind various TGFβ ligands. The possible consequence of this ligand-receptor promiscuity is further aggravated by the finding that canonical TGFβ signaling of all family members seemingly results in the activation of just two distinct signaling pathways, that is either SMAD2/3 or SMAD1/5/8 activation. While this would implicate that different ligands can assemble seemingly identical receptor complexes that activate just either one of two distinct pathways, in vitro and in vivo analyses show that the different TGFβ members exert quite distinct biological functions with high specificity. This discrepancy indicates that our current view of TGFβ signaling initiation just by hetero-oligomerization of two receptor subtypes and transduction via two main pathways in an on-off switch manner is too simplified. Hence, the signals generated by the various TGFβ members are either quantitatively interpreted using the subtle differences in their receptor-binding properties leading to ligand-specific modulation of the downstream signaling cascade or additional components participating in the signaling activation complex allow diversification of the encoded signal in a ligand-dependent manner at all cellular levels. In this review we focus on signal specification of TGFβ members, particularly of BMPs and GDFs addressing the role of binding affinities, specificities, and kinetics of individual ligand-receptor interactions for the assembly of specific receptor complexes with potentially distinct signaling properties.
Metabolomic profiling of different Premna odorata Blanco (Lamiaceae) organs, bark, wood, young stems, flowers, and fruits dereplicated 20, 20, 10, 20, and 20 compounds, respectively, using LC–HRESIMS. The identified metabolites (1–34) belonged to different chemical classes, including iridoids, flavones, phenyl ethanoids, and lignans. A phytochemical investigation of P. odorata bark afforded one new tetrahydrofurofuran lignan, 4β-hydroxyasarinin 35, along with fourteen known compounds. The structure of the new compound was confirmed using extensive 1D and 2D NMR, and HRESIMS analyses. A cytotoxic investigation of compounds 35–38 against the HL-60, HT-29, and MCF-7 cancer cell lines, using the MTT assay showed that compound 35 had cytotoxic effects against HL-60 and MCF-7 with IC50 values of 2.7 and 4.2 µg/mL, respectively. A pharmacophore map of compounds 35 showed two hydrogen bond acceptor (HBA) aligning the phenoxy oxygen atoms of benzodioxole moieties, two aromatic ring features vectored on the two phenyl rings, one hydrogen bond donor (HBD) feature aligning the central hydroxyl group and thirteen exclusion spheres which limit the boundaries of sterically inaccessible regions of the target’s active site.
(1) Background: After the discovery and application of Chlamydomonas reinhardtii channelrhodopsins, the optogenetic toolbox has been greatly expanded with engineered and newly discovered natural channelrhodopsins. However, channelrhodopsins of higher Ca\(^{2+}\) conductance or more specific ion permeability are in demand. (2) Methods: In this study, we mutated the conserved aspartate of the transmembrane helix 4 (TM4) within Chronos and PsChR and compared them with published ChR2 aspartate mutants. (3) Results: We found that the ChR2 D156H mutant (XXM) showed enhanced Na\(^+\) and Ca\(^{2+}\) conductance, which was not noticed before, while the D156C mutation (XXL) influenced the Na\(^+\) and Ca\(^{2+}\) conductance only slightly. The aspartate to histidine and cysteine mutations of Chronos and PsChR also influenced their photocurrent, ion permeability, kinetics, and light sensitivity. Most interestingly, PsChR D139H showed a much-improved photocurrent, compared to wild type, and even higher Na+ selectivity to H\(^+\) than XXM. PsChR D139H also showed a strongly enhanced Ca\(^{2+}\) conductance, more than two-fold that of the CatCh. (4) Conclusions: We found that mutating the aspartate of the TM4 influences the ion selectivity of channelrhodopsins. With the large photocurrent and enhanced Na\(^+\) selectivity and Ca\(^{2+}\) conductance, XXM and PsChR D139H are promising powerful optogenetic tools, especially for Ca\(^{2+}\) manipulation.
BACKGROUND: The barrier to diffusion of organic solutes across the plant cuticle is composed of waxes consisting of very long-chain aliphatic (VLCA) and, to varying degrees, cyclic compounds like pentacyclic triterpenoids. The roles of both fractions in controlling cuticular penetration by organic solutes, e.g. the active ingredients (AI) of pesticides, are unknown to date. We studied thepermeabilityof isolated leaf cuticularmembranes from Garcinia xanthochymus andPrunus laurocerasus for lipophilic azoxystrobin and theobromine as model compounds for hydrophilic AIs.
RESULTS: The wax of P. laurocerasus consists of VLCA (12%) and cyclic compounds (88%), whereas VLCAs make up 97% of the wax of G. xanthochymus.We showthat treating isolated cuticles with methanol almost quantitatively releases the cyclic fraction while leaving the VLCA fraction essentially intact. All VLCAs were subsequently removed using chloroform. In both species, the permeance of the two model compounds did not change significantly after methanol treatment, whereas chloroform extraction had a large effect on organic solute permeability.
CONCLUSION: The VLCA wax fractionmakes up the permeability barrier for organic solutes, whereas cyclic compounds even in high amounts have a negligible role. This is of significance when optimizing the foliar uptake of pesticides.
Polygonum cuspidatum (Japanese knotweed, also known as Huzhang in Chinese), a plant that produces bioactive components such as stilbenes and quinones, has long been recognized as important in traditional Chinese herbal medicine. To better understand the biological features of this plant and to gain genetic insight into the biosynthesis of its natural products, we assembled a draft genome of P. cuspidatum using Illumina sequencing technology. The draft genome is ca. 2.56 Gb long, with 71.54% of the genome annotated as transposable elements. Integrated gene prediction suggested that the P. cuspidatum genome encodes 55,075 functional genes, including 6,776 gene families that are conserved in the five eudicot species examined and 2,386 that are unique to P. cuspidatum. Among the functional genes identified, 4,753 are predicted to encode transcription factors. We traced the gene duplication history of P. cuspidatum and determined that it has undergone two whole-genome duplication events about 65 and 6.6 million years ago. Roots are considered the primary medicinal tissue, and transcriptome analysis identified 2,173 genes that were expressed at higher levels in roots compared to aboveground tissues. Detailed phylogenetic analysis demonstrated expansion of the gene family encoding stilbene synthase and chalcone synthase enzymes in the phenylpropanoid metabolic pathway, which is associated with the biosynthesis of resveratrol, a pharmacologically important stilbene. Analysis of the draft genome identified 7 abscisic acid and water deficit stress-induced protein-coding genes and 14 cysteine-rich transmembrane module genes predicted to be involved in stress responses. The draft de novo genome assembly produced in this study represents a valuable resource for the molecular characterization of medicinal compounds in P. cuspidatum, the improvement of this important medicinal plant, and the exploration of its abiotic stress resistance.
Bulb, leaf, scape and flower samples of British bluebells (Hyacinthoides non-scripta) were collected regularly for one growth period. Methanolic extracts of freeze-dried and ground samples showed antitrypanosomal activity, giving more than 50% inhibition, for 20 out of 41 samples. High-resolution mass spectrometry was used in the dereplication of the methanolic extracts of the different plant parts. The results revealed differences in the chemical profile with bulb samples being distinctly different from all aerial parts. High molecular weight metabolites were more abundant in the flowers, shoots and leaves compared to smaller molecular weight ones in the bulbs. The anti-trypanosomal activity of the extracts was linked to the accumulation of high molecular weight compounds, which were matched with saponin glycosides, while triterpenoids and steroids occurred in the inactive extracts. Dereplication studies were employed to identify the significant metabolites via chemotaxonomic filtration and considering their previously reported bioactivities. Molecular networking was implemented to look for similarities in fragmentation patterns between the isolated saponin glycoside at m/z 1445.64 [M + formic-H](-) equivalent to C64H104O33 and the putatively found active metabolite at m/z 1283.58 [M + formic-H](-) corresponding to scillanoside L-1. A combination of metabolomics and bioactivity-guided approaches resulted in the isolation of a norlanostane-type saponin glycoside with antitrypanosoma I activity of 98.9% inhibition at 20 mu M.
In contrast to the plasma membrane, the vacuole membrane has not yet been associated with electrical excitation of plants. Here, we show that mesophyll vacuoles from Arabidopsis sense and control the membrane potential essentially via the K\(^+\)-permeable TPC1 and TPK channels. Electrical stimuli elicit transient depolarization of the vacuole membrane that can last for seconds. Electrical excitability is suppressed by increased vacuolar Ca\(^{2+}\) levels. In comparison to wild type, vacuoles from the fou2 mutant, harboring TPC1 channels insensitive to luminal Ca\(^{2+}\), can be excited fully by even weak electrical stimuli. The TPC1-loss-of-function mutant tpc1-2 does not respond to electrical stimulation at all, and the loss of TPK1/TPK3-mediated K\(^{+}\) transport affects the duration of TPC1-dependent membrane depolarization. In combination with mathematical modeling, these results show that the vacuolar K\(^+\)-conducting TPC1 and TPK1/TPK3 channels act in concert to provide for Ca\(^{2+}\)- and voltage-induced electrical excitability to the central organelle of plant cells.