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Ecophysiological adaptations of the cuticular water permeability within the Solanaceae family
(2024)
The cuticle, a complex lipidic layer synthesized by epidermal cells, covers and protects primary organs of all land plants. Its main function is to avoid plant desiccation by limiting non-stomatal water loss. The cuticular properties vary widely among plant species. So far, most of the cuticle-related studies have focused on a limited number of species, and studies addressing phylogenetically related plant species are rare. Moreover, comparative studies among organs from the same plant species are still scarce.
Thus, this study focus on organ-specificities of the cuticle within and between plant species of the Solanaceae family. Twenty-seven plant species of ten genera, including cultivated and non- cultivated species, were investigated to identify potential cuticular similarities. Structural, chemical and functional traits of fully expanded leaves, inflated fruiting calyces, and ripe fruits were analyzed.
The surface morphology was investigated by scanning electron microscopy. Leaves were mainly amphistomatic and covered by an epicuticular wax film. The diversity and distribution of trichomes varied among species. Only the leaves of S. grandiflora were glabrous. Plant species of the Leptostemonum subgenus had numerous prickles and non-glandular stellate trichomes. Fruits were stomata-free, except for S. muricatum, and a wax film covered their surface. Last, lenticel- like structures and remaining scars of broken trichomes were found on the surface of some Solanum fruits.
Cuticular water permeability was used as indicators of the cuticular transpiration barrier efficiency. The water permeability differed among plant species, organs and fruit types with values ranging up to one hundred-fold. The minimum leaf conductance ranged from 0.35 × 10-5 m s-1 in S. grandiflora to 31.54 × 10-5 m s-1 in S. muricatum. Cuticular permeability of fruits ranged from 0.64 × 10-5 m s-1 in S. dulcamara (fleshy berry) to 34.98 × 10-5 m s-1 in N. tabacum (capsule). Generally, the cuticular water loss of dry fruits was about to 5-fold higher than that of fleshy fruits.
Interestingly, comparisons between cultivated and non-cultivated species showed that wild species have the most efficient cuticular transpiration barrier in leaves and fruits. The average permeability of leaves and fruits of wild plant species was up to three-fold lower in comparison to the cultivated ones. Moreover, ripe fruits of P. ixocarpa and P. peruviana showed two-times lower cuticular transpiration when enclosed by the inflated fruiting calyx.
The cuticular chemical composition was examined using gas chromatography. Very-long-chain aliphatic compounds primarily composed the cuticular waxes, being mostly dominated by n- alkanes (up to 80% of the total wax load). Primary alkanols, alkanoic acids, alkyl esters and branched iso- and anteiso-alkanes were also frequently found. Although in minor amounts, sterols, pentacyclic triterpenoids, phenylmethyl esters, coumaric acid esters, and tocopherols were identified in the cuticular waxes. Cuticular wax coverages highly varied in solanaceous (62- fold variation). The cuticular wax load of fruits ranged from 0.55 μg cm−2 (Nicandra physalodes) to 33.99 μg cm−2 (S. pennellii), whereas the wax amount of leaves varied from 0.90 μg cm−2 (N. physalodes) to 28.42 μg cm−2 (S. burchellii). Finally, the wax load of inflated fruiting calyces ranged from 0.56 μg cm−2 in P. peruviana to 2.00 μg cm−2 in N. physalodes.
For the first time, a comparative study on the efficiency of the cuticular transpiration barrier in different plant organs of closely related plant species was conducted. Altogether, the cuticular chemical variability found in solanaceous species highlight species-, and organ-specific wax biosynthesis. These chemical variabilities might relate to the waterproofing properties of the plant cuticle, thereby influencing leaf and fruit performances. Additionally, the high cuticular water permeabilities of cultivated plant species suggest a potential existence of a trade-off between fruit organoleptic properties and the efficiency of the cuticular transpiration barrier. Last, the high cuticular water loss of the solanaceous dry fruits might be a physiological adaptation favouring seed dispersion.
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.
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.
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 greatest problems faced during the 21st century is climate change which is a big threat to food security due to increasing number of people. The increase in extreme weather events, such as drought and heat, makes it difficult to cultivate conventional crops that are not stress tolerant. As a result, increasing irrigation of arable land leads to additional salinization of soils with plant-toxic sodium and chloride ions. Knowledge about the adaptation strategies of salt-tolerant plants to salt stress as well as detailed knowledge about the control of transpiration water loss of these plants are therefore important to guarantee productive agriculture in the future. In the present study, I have characterized salt sensitive and salt tolerant plant species at physiological, phenotypic and transcriptomic level under short (1x salt) and long-time (3x) saline growth conditions. Two approaches used for long-time saline growth conditions (i.e increasing saline conditions (3x salt) and constant high saline conditions (3x 200 mM salt) were successfully developed in the natural plant growth medium i.e soil. Salt sensitive plants, A. thaliana, were able to survive and successfully set seeds at the toxic concentrations on the increasing saline growth mediums, with minor changes in the phenotype. However, under constant high saline conditions they could not survive. This was due to keeping low potassium, and high salt ions (sodium and chloride) in the photosynthetic tissue i.e leaf. Similarly, high potassium and low salt ions in salt tolerant T. salsuginea on both saline environments were the key for survival of this plant species. Being salt tolerant, T. salsuginea always kept high potassium levels and low sodium (during 1x) and chloride levels (during both 1x and 3x) in the leaf tissue.
A strict control over transpirational water loss via stomata (formed by pair of guard cells) is important to maintain plant water balance. Aperture size of the stomata is regulated by the turgidity of the guard cells. More turgid the guard cells, bigger the apertures are and hence more transpiration. Under osmotic stress, the water loss is reduced which was evident in the salt sensitive A. thaliana plants under both short and long-time saline growth conditions. As the osmotic stress was only increased during long time saline growth conditions in T. salsuginea therefore, water loss was also decreased only under these saline conditions. Environmental CO2 assimilation also takes place via stomata in plants which then is used for photosynthesis. Stomatal apertures also influence CO2 assimilation. As the light absorbing photosynthetic pigments were more affected in A. thaliana, therefore photosynthetic activity of the whole plant was also reduced. Similarly, both short and long-time saline growth conditions also reduced the effective quantum yield of A. thaliana guard cells. Growth of the plant is dependent on energy which comes from photosynthesis. Reduced environmental CO2 assimilation would affect photosynthesis and hence growth, which was clearly observed in A. thaliana guard cells under long-time saline growth conditions.
Major differences in both guard cells types were observed in their chloride and potassium levels. Energy Dispersive X-Ray Analysis (EDXA) suggested strict control of chloride accumulation in T. salsuginea guard cells as the levels remain unchanged under all conditions. Similarly, use of sodium in place of potassium for osmotic adjustments seems to be dependent on Na+/K+ rations in both guard cell types. Increased salt ions and reduced potassium levels in A. thaliana guard cells posed negative effect on photochemistry which in turn increased ROS metabolism and reduced energy related pathways at transcriptomic level in this plant species. Moreover, photosynthesis was strongly affected in A. thaliana guard cells both at transcriptomic and physiological levels. Similarly, global phytohormones induced changes were more evident in A. thaliana guard cells especially on 3x salt medium. Among all phytohormones, genes under the control of auxin were more differentially expressed in A. thaliana guard cells which suggests wide changes in growth and development in this plant species under salinity.
Phytohormone, ABA is vital for closing the stomata under abiotic stress conditions. Increased levels of ABA during saline conditions led to efflux of potassium and counter anions (chloride, malate, nitrate) from the guard cells which caused the outward flow of water and hence reduction in turgor pressure. Reduced turgor pressure led to reduced water loss and CO2 assimilation especially in A. thaliana. Guard cells of both plant species synthesized ABA during saline conditions which was reflected from transcriptomic data and ABA quantification in the guard cells. ABA induced signaling in both plant species varied at the ABA receptor (PYL/PYR) levels where totally contrasting responses were observed. PYL2, PYL8 and PYL9 were specific to A. thaliana, furthermore, PYL2 was found to be differentially expressed only under 3x salt growth conditions thus suggesting its role during long term salt stress in this plant species. Protein phosphatases, which negatively regulate ABA signaling on one hand and act as ABA sensor on the other hand were found to be more differentially expressed in A. thaliana than T. salsuginea guard cells, which suggests their diverse role in both plant species under saline conditions. Differential expression of more ABA signaling players in long time saline conditions was prominent which could be because of darkness, as it is well known that rapid closure of stomata under dark conditions require ABA signaling. Moreover, representation of these components in dark also suggests that plants become more sensitive to dark under saline conditions which is also evident from the transpiration rates.
Altogether, increased salt ions in A. thaliana guard cells and leaves led to pigment degradation and ABA induced reduction in transpiration which in turn influenced its growth. In contrast, T. salsuginea is the salt excluder and therefore keeps low levels of salt ions especially the chloride both in leaves and guard cells which mildly affects its growth. Guard cells of A. thaliana encounter severe energy problems at physiological and transcriptomic level. Main differences in the ABA signalling between both plant species were observed at the ABA receptor level.
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.
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.
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.
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.
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.