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Regulation of pathogen-inducible volatile compounds in Arabidopsis and their role in plant defense
(2010)
Plants are constantly attacked by pathogenic microbes. As a result, they have evolved a plethora of constitutive and inducible defense responses to defend against attempted pathogen infection. Although volatile organic compounds have been implicated in plant defense, direct evidence of their function in plant resistance is still lacking. I have examined the role of VOCs in Arabidopsis defense against the hemibiotrophic bacterial pathogen Pseudomonas syringae pv. maculicola. The obtained results show that the vegetative parts of Arabidopsis produces and emits the volatile phenylpropanoid MeSA and three kinds of terpenoids, (E,E)-4,8,12-trimethyltrideca-1,3,7,11-tetraene (TMTT), alpha-ionon and beta-farnesen, upon avirulent and virulent P. syringae inoculation. Whereas the most abundant volatiles, MeSA and TMTT, are already produced at early stages of infection in the compatible and incompatible interaction, enhanced emission of alpha-ionon and beta-farnesen can only be detected in later stages of the compatible interaction. It was revealed that pathogen-induced synthesis of TMTT in Arabidopsis requires the JA signaling pathway but occurs independently of SA defense signaling. Similarly, the production of MeSA is dependent on JA signaling but not on the SA defense signaling pathway. Furthermore, production of MeSA is dependent on the function of ISOCHORISMATE SYNTHASE1, which produces its precursor SA. Upon inoculation with avirulent P. syringae, endogenously produced JA activates the JA signalling pathway to mediate MeSA and TMTT synthesis. By contrast, in the compatible Arabidopsis-Psm interaction, production of MeSA predominantly depends on the P. syringea the virulence factor coronatine, which activates JA downstream signaling. To learn more about the role of inducible VOCs in plant defense responses, I have identified an Arabidopsis T-DNA insertions line with a defect in the TERPENE SYNTHASE4 (TPS4) gene. Emission profiles from this mutant revealed that the induced production of TMTT but not of alpha-ionone, beta-farnesene or MeSA are abolished, demonstrating that TPS4 specifically regulates the P. syringae-induced synthesis of TMTT in Arabidopsis. The lack of TMTT in tps4 mutants, however, does not affect plant defense responses and resistance induction against P. syringae. This excludes a role of the terpenoid as an effective phytoalexin in Arabidopsis leaves against the bacterial pathogen. Moreover, tps4 mutant plants are still able to mount a SAR response, excluding a signaling function of TMTT during SAR. An important aim of our studies was to address the defensive role of MeSA, the major VOC emitted from P. syringae-inoculated Arabidopsis leaves. MeSA has been recently proposed as a critical long distance signal in the development of SAR. I found that two independent T-DNA insertions lines with defects in expression of the pathogen-inducible SA methyl transferase gene BSMT1 are completely devoid of pathogen-induced production of MeSA. However, bsmt1 mutant plants are capable to increase the level of SA in systemic, non-infected leaves of Arabodopsis and develop SAR like wild-type plants upon local P. syringae-inoculation. Thus, MeSA does not function as a critical SAR signal in Arabidopsis. Further experiments showed that SA accumulation in distant leaves occurs due to de novo synthesis through isochorismate synthase. In addition, we also ruled out a critical defensive role of MeSA at inoculation sites, because bsmt1 mutants are able to build up SA-dependent defense responses and local resistance in a wild-type-like manner. The conversion of SA to MeSA and subsequently emission of MeSA from the plant might help the plant to detoxify an excess of SA. This process is regulated by the JA pathway and might be one means to mediate negative crosstalk between JA and SA signaling. Moreover, the COR-triggered conversion of SA to MeSA and emission of the volatile methyl ester could be a way by which virulent P. syringae is able to attenuate the SA-defense pathway.
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.
Regulation Tumornekrosefaktor (TNF) Rezeptor assoziierter Signalwege durch das Adapterprotein TRAF1
(2015)
TWEAK ist ein zu der TNF-Superfamilie (Tumor Necrosis Factor) zugehöriges Zytokin, welches in Form löslicher und membranständiger Moleküle vorkommt. Beide Formen des Liganden können an den Rezeptor (Fn14) binden. Viele verschiedene intrazelluläre Signalwege werden durch den Fn14 aktiviert, beispielweise Erk1/2, JNK, Jun und STAT3, vor allem jedoch das NFkB. Lösliches und membranständiges TWEAK zeigen eine ähnliche Aktivierungseffizienz bezüglich des alternativen NFkB-Signalwegs, wohingegen membranständiges TWEAK weit besser als lösliches TWEAK den klassischen NFkB-Signalweg aktiviert. In der vorliegenden Arbeit wurde zunächst die TWEAK-vermittelte Induzierbarkeit von verschiedenen Zielgenen des NFkB-Systems untersucht. Lösliches TWEAK zeigte einen weit schwächeren aktivierenden Effekt auf den klassischen NFkB-Signalweg als TNF, das ein sehr guter Aktivator des klassischen NFkB-Systems ist (Abb. 5, 6). Nichtsdestotrotz war TWEAK imstande eine stärkere TRAF1-Induktion als TNF herbeizuführen (Abbildung 7, 8). TRAF1 ist ein durch NFkB-System stark reguliertes Gen. Um posttranskriptionelle TRAF1-Modifikationen als Ursache für die unerwartet gute TRAF1-Induktion durch lösliches TWEAK auszuschließen, wurde die TRAF1-Expression nach Proteasom- und Caspasen-Inhibition untersucht (Abbildung 9). Dies ergab keinen Hinweis auf einen Einfluss dieser Prozessen auf der TRAF1-Expression.
Mittels des IKK2-spezifischen Inhibitor TPCA-1 wurde die TWEAK-vermittelte TRAF1-Induktion Zelltyp-abhängig gehemmt, wohingegen die TNF-vermittelte Induktion von TRAF1 in allen Zelllinien vollständig inhibiert wurde (Abbildung 13). Versuche mit dem NEDD8-aktivierenden Enzym (NAE) Inhibitor MLN4924, resultierten in einer totalen Inhibition der TRAF1-Expression in allen TWEAK- und TNF-stimulierten Zellen (Abbildung 14). Diese Befunde sprechen dafür, dass bei der TWEAK-vermittelten TRAF1-Expression beide Zweige des NFkB-Signalwegs Zelltyp-abhängig beteiligt sind.
Die Oligomerisierung der Liganden der TNF-Familie verstärkt oft ihre Aktivität. Oligomerisiertes TWEAK imitiert die biologische Aktivität von membranständigem TWEAK. Lösliches TWEAK wurde mit einem anti-Flag Antikörper oligomerisiert und die TRAF1-Induktion durch den alternativen NFkB-Signalweg wurde analysiert
Oligomerisiertes TWEAK aktivierte Zelltyp-unabhängig den klassischen NFkB-Signalweg stärker als lösliches TWEAK, wohingegen kein Effekt auf die TRAF1-Induktion oder auf die Aktivierung den alternativen NFkB-Signalweg festgestellt wurde (Abbildung 11, 12). TWEAK ist imstande die TRAF2-vermittelte CD40-Induktion des klassischen NFkB-Signalwegs zu hemmen (Abbildung 16, 17). Um den Beitrag von TWEAK-Induziertem TRAF1 zur CD40-Inhibition zu herauszufinden, wurden TRAF1-stabil transfizierte 786O- und U2OS-Zellen hergestellt (Abbildung 19). Die CD40-Induzierte IkBa-Degradation und IL8/6 Produktion war in den TRAF1-Transfektanten als auch in mit löslichem TWEAK vorbehandelte Zellen stark inhibiert (Abbildung 21, 22), wobei die CD40-Expression und CD40/CD40L-Interaktion unverändert blieb (Abbildung 20). Diese Ergebnisse sprechen für einen wichtigen Beitrag des Adaptorprotein TRAF1 in der TWEAK-vermittelte Inhibition der CD40-induzierte Aktivierung des klassischen NFkB-Signalwegs.
Aus Lycopersicon esculentum Zellsuspensionskulturen konnte ein bisher unbekanntes Enzym isoliert und beschrieben werden, das die Hydrolyse von Methyljasmonat (MeJA) zu Jasmonsäure (JA) katalysiert. Das Enzym wurde als Methyljasmonat-Esterase (MeJA-Esterase) bezeichnet. Mittels Methyl-[2-14C]JA und [Methyl-3H]MeJA wurden qualitative und quantitative Enzymtestsysteme etabliert, welche die Reinigung und Charakterisierung des Enzyms erlaubten. Methyljasmonat-Esterase Aktivität konnte in 18 taxonomisch unterschiedlichen Zellsuspensionskulturen höherer Pflanzen sowie in differenziertem Gewebe (Blüte, Wurzel, Stengel und Blatt) von Lycopersicon esculentum cv. Moneymaker nachgewiesen werden. In einem 6-stufigen Reinigungsverfahren wurde das native Enzym mit einer Ausbeute von 2.2 % bis zur Homogenität 767-fach angereichert. Die native MeJA-Esterase kommt nativ als monomeres 26 kDa großes Protein vor. Unter denaturierenden Bedingungen konnte ein Molekulargewicht von 28 kDa bestimmt werden. Eine Analyse mittels ESI-TOF-Massenspektrometrie ergab ein Molekulargewicht von 28547 Da. Die native MeJA-Esterase hatte ein basisches pH-Optimum von 9.0. Optimale katalytische Aktivität zeigte die MeJA-Esterase bei einer Reaktionstemperatur von 40 C. Der isoelektrische Punkt lag bei pH 4.7. Eine vollständige und irreversible Hemmung der MeJA-Esterase konnte durch 5 mM Phenylmethylsulfonylfluorid (PMSF), einem Serinprotease-Inhibitor erzielt werden. Dieses Ergebnis lieferte einen Hinweis darauf, dass die MeJA-Esterase eine katalytische Triade mit einem reaktiven Serin-Rest besitzt. N-Methylmaleimid, Iodacetamid, Bestatin, Pepstatin und Leupeptin konnten die MeJA-Esterase nicht inhibieren. Nach der Reinigung der MeJA-Esterase wurde das Protein partiell mit der Endoproteinase LysC verdaut. Mittels Sequenzierung der Spaltpeptide und N-terminaler Sequenzierung der MeJA-Esterase konnte von vier Peptiden die Sequenz bestimmt werden. Ein Datenbankvergleich (SwissProt und EMBL) dieser Peptide mit bekannten Sequenzen zeigte eine hohe Homologie (bis zu 80 %) zu verschiedenen Esterasen und α-Hydroxynitrillyasen. Die Peptide konnten somit eindeutig als Bestandteile einer Esterase identifiziert werden. Zur Identifizierung des MeJA-Esterase Gens wurden aus den Peptidsequenzen degenerierte Primer abgeleitet und zur weiteren Klonierung verwendet. Über eine Reverse Transkription mit anschließender PCR wurde ein internes cDNA-Fragment (513 bp) amplifiziert. Mittels RACE (Rapid Amplification of cDNA Ends) konnten das 5´-und 3´-Ende der MeJA-Esterase cDNA ermittelt werden. Die Nucleotidsequenz umfasste einen offenen Leserahmen von 786 bp. Die davon abgeleitete Aminosäuresequenz codierte ein offenes Leseraster für ein Protein von 262 Aminosäuren. Datenbankvergleiche der vollständigen Aminosäuresequenz zeigten Homologien von 33 – 47 % zu Esterasen und α-Hydroxynitrillyasen. Die Aminosäuren der katalytischen Triade, die in den homologen Proteinen hochkonserviert waren, konnten bei der MeJA-Esterase als Serin-83, Asparaginsäure-211 und Histidin-240 ermittelt werden. Diese drei Aminosäuren bilden vermutlich das katalytische Zentrum der MeJA-Esterase. Darüber hinaus konnte eine hochkonservierte Signatur, die allen Lipasen gemeinsam ist in der Aminosäuresequenz der MeJA-Esterase identifziert werden. Diese Ergebnisse erlauben eine Einordnung der MeJA-Esterase in die Superfamilie der „alpha/beta-Fold“-Hydrolasen. Untersuchungen der Primärstruktur der MeJA-Esterase legten den Schluss nahe, dass es sich um ein cytosolisches Enzym handelt. Eine Southern-Blot Analyse mit genomischer DNA aus L. esculentum wurde zur Abschätzung der Kopienzahl der zum Protein der MeJA-Esterase korresporendierenden Gene durchgeführt. Dabei wurden zwei bis sieben DNA-Abschnitte ermittelt, die mit der Volllänge-Sonde der MeJA-Esterase hybridisierten. Dieses Ergebnis lässt vermuten, dass die MeJA-Esterase zu einer Genfamilie gehört. Unklar bleibt jedoch, ob es sich um mehrere homologe Gene handelt, oder ob eine Hybridisierung der Volllänge-Sonde mit Pseudogenen erfolgte. Die heterologe Expression der MeJA-Esterase cDNA wurde erfolgreich durchgeführt. Hierdurch wurde der Beweis erbracht werden, dass die klonierte cDNA tatsächlich für das Gen der MeJA-Esterase codierte. Nach Klonierung der cDNA in den pQE70-Expressionsvektor und Transformation in kompetente E. coli (M15) konnte im Proteinrohextrakt eine spezifische Enzymaktivität von 1.64 pkat/mg detektiert werden. In einem 4-stufigen Reinigungsverfahren wurde das heterolog exprimierte Enzym mit einer Ausbeute von 0.8 % bis zur Homogenität 283-fach angereichert. Untersuchungen zur Substratspezifität zeigten, dass native und heterolog exprimierte MeJA-Esterase Methyljasmonat zu Jasmonsäure hydrolysierten. In beiden Fällen handelte es sich jedoch um kein hochspezifisches Enzym. Für die native MeJA-Esterase konnte ein KM-Wert von 14.7 ± 0.8 µM und für die heterolog exprimierte MeJA-Esterase ein KM-Wert von 24.3 ± 2.3 µM ermittelt werden.
The relationship between asparagine metabolism and protein concentration was investigated in soybean seed. Phenotyping of a population of recombinant inbred lines adapted to Illinois confirmed a positive correlation between free asparagine levels in developing seeds and protein concentration at maturity. Analysis of a second population of recombinant inbred lines adapted to Ontario associated the elevated free asparagine trait with two of four quantitative trait loci determining population variation for protein concentration, including a major one on chromosome 20 (linkage group I) which has been reported in multiple populations. In the seed coat, levels of asparagine synthetase were high at 50 mg and progressively declined until 150 mg seed weight, suggesting that nitrogenous assimilates are pre-conditioned at early developmental stages to enable a high concentration of asparagine in the embryo. The levels of asparaginase B1 showed an opposite pattern, being low at 50 mg and progressively increased until 150 mg, coinciding with an active phase of storage reserve accumulation. In a pair of genetically related cultivars, ∼2-fold higher levels of asparaginase B1 protein and activity in seed coat, were associated with high protein concentration, reflecting enhanced flux of nitrogen. Transcript expression analyses attributed this difference to a specific asparaginase gene, ASPGB1a. These results contribute to our understanding of the processes determining protein concentration in soybean seed.
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.
Aufgrund seiner potentiell gesundheitsfoerdernden Wirkung wurde das Falvonol Quercetin in den letzten Jahren intensiv untersucht. Daten zur Bioverfuegbarkeit nach oraler Applikation sind jedoch selten und widerspruechlich. Fruehere Untersuchungen deuteten darauf hin, dass die Disposition von Quercetin von der Zuckerkomponente des Glykosids oder der Pflanzenmatrix abhaengen koennte. Um den Einfluss der Zuckerkomponente oder der Matrix auf die Resorption von Quercetin festzustellen, wurden zwei isolierte Quercetinglykoside sowie zwei Pflanzenextrakte in einer vierarmigen, randomisierten cross-over Studie an 12 gesunden Probanden getestet. Jeder Proband erhielt eine Zwiebelzubereitung oder Quercetin-4'-O-glucosid, jeweils entsprechend 100 mg Quercetinaglykon, sowie Quercetin-3-O-rutinosid oder Buchweizenkrauttee entsprechend 200 mg Quercetinaglykon. Die Proben wurden mittels HPLC und Coulometrischer Arraydetektion analysiert. Im Plasma wurden ausschliesslich Quercetinglucuronide detektiert. Freies Quercetin und die Glykoside waren nicht nachweisbar. Die Bioverfuegbarkeit und Pharmakokinetik nach Applikation von Zwiebeln und Quercetin-4'-glucosid zeigte keine signifikanten Unterschiede. Maximale Plasmakonzentrationen von 2.3±1.5 µg·mL-1 and 2.1±1.6 µg·mL-1 (MW±SD) wurden nach 0.7±0.2 h und 0.7±0.3 h erreicht. Nach Einnahme von Buchweizenkraut und Rutin wurden maximale Plasmakonzentrationen (trotz der doppelten Dosis) von nur 0.6±0.7 µg·mL-1 und 0.3±0.3 µg·mL-1 nach 4.3±1.8 h bzw. 7.0±2.9 h erreicht. Die terminale Halbwertszeit lag bei ca. 11 h fuer alle vier Pruefpraeparate. Die Disposition von Quercetin ist daher primaer von der Zuckerkomponente abhaengig. Zu einem geringern Anteil beeinflusst die Pflanzenmatrix im Falle von Buchweizenkrauttee sowohl Geschwindigkeit als auch Ausmass der Resorption. Der Resorptionsort scheint fuer Quercetin-4‘-O-glucoside und Quercetin-3-O-rutinoside unterschiedlich zu sein. Die bedeutung spezifischer carrier fuer die Resorption von Quercetinglykosiden sowie von intestinalen ß-Glucosidasen muss in weiteren Untersuchungen geklaert werden.
Functionally active (conformational) autoantibodies directed against the β1-adrenergic receptor (β1-AR) are supposed to have a pathogenic relevance in human heart failure, particularly in idiopathic dilated cardiomyopathy (DCM). Prevalence of anti-β1-autoantibodies (anti-β1-aabs) in the healthy population is almost negligible, whereas it amounts to up to 30% in heart failure patients with idiopathic DCM. As β1-ARs are not restricted to the heart and are also highly expressed in particular segments of the nephron, it is conceivable that such autoantibodies might also affect kidney function to some extent through the activation of renal β1-ARs.
In the kidney, β1-ARs are highly abundant in the juxtaglomerular apparatus, the distal convoluted tubules, the collecting duct, and the renal arteries. However, the functional significance of β1-ARs at these particular sites along the nephron is poorly understood, as are the effects of conformational stimulating anti-β1-aabs on renal β1-ARs. From the available literature, it is well known that the β1-adrenergic system is involved in, e.g., the regulation of renin-secretion from juxtaglomerular cells. In addition, the β1-adrenergic system is thought to be involved in the regulation of the urine pH via type B-intercalated cells in the collecting duct. In contrast, the regulation of salt- and fluid-secretion in the medullary collecting duct appears to occur independently from the SNS.
As a consequence, the present work aimed to unravel the potential pathophysiological links between renal function, alterations in the cardiovascular system, and circulating agonist-like anti- β1-abs. We analyzed possible renal effects of anti-β1-abs in a human-analogous rat model. After immunization with a GST-fusion protein containing the second extracellular loop (β1-ECII) of the human β1-AR, Lewis-rats develop functionally active, stimulating, conformational anti-β1-ECII-abs. Within the first 6 months, anti-β1-ECII-ab-positive animals develop a hypertensive phenotype, which after 9 months evolves into a DCM phenotype.
In n=40 GST/ β1-ECII-immunized Lewis rats and n=40 age-matched, 0.9% NaCl-injected control animals, we sequentially (i.e. at months 1, 2, 3, 6, 9, 12, 15, and 18 after start of immunization) analyzed the changes in renal function on a molecular, functional, and structural level. We could show that the presence of stimulating anti-β1-ECII-abs – even though having detrimental effects on the heart – has only a minor impact on kidney function and structure. Within the first 3 months after induction of anti-β1-ECII-abs, the levels and activity of renin were significantly increased in immunized compared to corresponding control animals, which was confirmed by experiments on isolated perfused kidneys, in which anti-β1-ECII-abs were able to directly induce the liberation of renin. However, within several weeks the initial anti-β1-ECII-ab-mediated RAAS activation was counter-regulated by auto-regulatory mechanisms activated in the kidney. Similarly, glomerular filtration rate (GFR) and renal blood flow (RBF) were initially decreased in the presence of the stimulating anti-β1-ECII-abs, but returned to control values within 3 months after immunization of the animals. Although expression of several pro-fibrotic markers was significantly up-regulated in anti-β1-ECII-ab-positive rats, no significant differences were noted on a histomorphological level with regard to the occurrence of renal fibrosis, glomerular damage, tubular damage, and perivascular fibrosis. Only a mild decrease in glomerular filtration function was observed in the kidneys of anti-β1-ECII-ab-positive animals from immunization-month 12 on, apparent by increased levels of urinary protein.
Even though anti-β1-ECII-abs were able to induce mild changes in renal function, their effects were not strong enough to critically damage the kidneys in our rat-model. Differences between immunized anti-β1-ECII-ab-positive and corresponding control rats at later time-points (that is, from immunization-month 12 on) are most likely secondary to the progressive heart failure phenotype that immunized animals develop in the course of the experiment.
The present study is the first to focus on the effects of stimulating anti-β1-ECII-abs on the kidney, and on the prevalence of these effects for the heart (referred to as cardio-renal crosstalk). Although our results were obtained in a rat model, they might contribute to better understand the situation in anti-β1-AR-aab-positive human patients. Following the results of our experiments, treatment of such patients should focus on direct and specific neutralization/elimination of stimulating anti-β1-ECII-aab or at least comprise therapeutic strategies that counteract the anti-β1-ECII-aab-effects on the heart by standard treatment for heart failure (i.e. ACE inhibitors, AT1-receptor blockers, and β-blockers) according to current guidelines.
Rhodopsin-cyclases for photocontrol of cGMP/cAMP and 2.3 Å structure of the adenylyl cyclase domain
(2018)
The cyclic nucleotides cAMP and cGMP are important second messengers that orchestrate fundamental cellular responses. Here, we present the characterization of the rhodopsinguanylyl cyclase from Catenaria anguillulae (CaRhGC), which produces cGMP in response to green light with a light to dark activity ratio > 1000. After light excitation the putative signaling state forms with tau = 31 ms and decays with tau = 570 ms. Mutations (up to 6) within the nucleotide binding site generate rhodopsin-adenylyl cyclases (CaRhACs) of which the double mutated YFP-CaRhAC (E497K/C566D) is the most suitable for rapid cAMP production in neurons. Furthermore, the crystal structure of the ligand-bound AC domain (2.25 angstrom) reveals detailed information about the nucleotide binding mode within this recently discovered class of enzyme rhodopsin. Both YFP-CaRhGC and YFP-CaRhAC are favorable optogenetic tools for non-invasive, cell-selective, and spatio-temporally precise modulation of cAMP/cGMP with light.
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.