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Actinomycetes are prolific producers of pharmacologically important compounds accounting for about 70% of the naturally derived antibiotics that are currently in clinical use. In this study, we report on the isolation of Streptomyces sp. strains from Mediterranean sponges, on their secondary metabolite production and on their screening for anti-infective activities. Bioassay-guided isolation and purification yielded three previously known compounds namely, cyclic depsipeptide valinomycin, indolocarbazole alkaloid staurosporine and butenolide. This is the first report of the isolation of valinomycin from a marine source. These compounds exhibited novel anti-parasitic activities specifically against Leishmania major (valinomycin IC50 < 0.11 μM; staurosporine IC50 5.30 μM) and Trypanosoma brucei brucei (valinomycin IC50 0.0032 μM; staurosporine IC50 0.022 μM; butenolide IC50 31.77 μM). These results underscore the potential of marine actinomycetes to produce bioactive compounds as well as the re-evaluation of previously known compounds for novel anti-infective activities.
Terrestrial actinomycetes are noteworthy producers of a multitude of antibiotics, however the marine representatives are much less studied in this regard. In this study, 90 actinomycetes were isolated from 11 different species of marine sponges that had been collected from offshore Ras Mohamed (Egypt) and from Rovinj (Croatia). Phylogenetic characterization of the isolates based on 16S rRNA gene sequencing supported their assignment to 18 different actinomycete genera representing seven different suborders. Fourteen putatively novel species were identified based on sequence similarity values below 98.2% to other strains in the NCBI database. A putative new genus related to Rubrobacter was isolated on M1 agar that had been amended with sponge extract, thus highlighting the need for innovative cultivation protocols. Testing for anti-infective activities was performed against clinically relevant, Gram-positive (Enterococcus faecalis, Staphylococcus aureus) and Gram-negative (Escherichia coli, Pseudomonas aeruginosa) bacteria, fungi (Candida albicans) and human parasites (Leishmania major, Trypanosoma brucei). Bioactivities against these pathogens were documented for 10 actinomycete isolates. These results show a high diversity of actinomycetes associated with marine sponges as well as highlight their potential to produce anti-infective agents.
The present study was aimed at revealing the early signalling events during the interaction of the diazotrophic soil bacterium Azospirillum brasilense with its host plant Arabidopsis thaliana. Furthermore, taking advantage of the micro array technique, a comprehensive overview of Arabidopsis genes has been undertaken which are affected upon association with A. brasilense The characterization of the early responses of Arabidopsis plants upon inoculation with Azospirillum brasilense strain Sp7 clearly indicated parallels with the initial events in plant pathogen interaction. For instance, not only bacterial preprations (lysates) form Azospirillum elicited an apoplastic alkalinization of the culture medium, but also the live bacteria, which were even more effective. Besides, in a luminol based assay, the bacterial lysates triggered production of the reactive oxygen species (ROS) in the Arabidopsis leaf discs. Interestingly, the elongation factor receptor mutants (efr) were completely insensitive to Azospirillum, suggesting elongation factor Tu (EF-TU) recognition as elicitor by Arabidopsis. This hypothesis was further validated with a bioinformatic approach. The N terminus initial 26 amino acids from Azospirillum EF-TU gene (elf26) showed more similarity to the elf26 sequences of bacteria like Agrobacterium tumefaciens which elicit responses in the plants through EF-TU rather than Pseudomonas syringae where the potent elicitor is flagellin 22. Universal transcriptome profiling of Arabidopsis thaliana seedlings upon inoculation with Azospirillum brasilense over a time course of six, twenty four and ninty six hours revealed very little genetic responses in the early time points. However, a bulk of genes was differentially regulated in 96 hours post inoculation (96hpi). The nature of these genes indicated that the bacterial treatment, among others, greatly affect the processes like cell wall modification, hormone metabolism, stress and secondary metabolism. Additionally expression levels of a numer of transcription factors (TFs) related to basic helix loop helix (BHLH) and MYB domain containing TF families were altered with Azospirillum inoculation. Particularly the BHLH TFs were among the most highly regulated genes. The array results from Azospirillum treated plants were further compared with the already available data emnating from treatment with flagellin 22 (flg22), oligogalacturonides (OGs) and Agrobacterium tumefaciens. Noteworthy, very different set of genes were affected upon inoculation with Azospirillum in relation to other treatments. Secondly a cluster of proteins involved in the biosynthesis of aliphatic glucosinolates (GSL) were uniquely induced upon Sp7 exposure. Genes operating in flavonoid biosynthesis also showed a distinct regulation trend in the comparative analysis. Taken together, the study in question provides insights into the early signalling events in the context of Azospirillum-Arabidopsis association and the bacterial signals recognized by the plants. The array data, at the same time, elucidates the genetic factors of Arabidopsis triggered upon association with Azospirillum brasilense.
Sucrose- and H+-Dependent Charge Movements Associated with the Gating of Sucrose Transporter ZmSUT1
(2010)
Background: In contrast to man the majority of higher plants use sucrose as mobile carbohydrate. Accordingly protondriven sucrose transporters are crucial for cell-to-cell and long-distance distribution within the plant body. Generally very negative plant membrane potentials and the ability to accumulate sucrose quantities of more than 1 M document that plants must have evolved transporters with unique structural and functional features. Methodology/Principal Findings: To unravel the functional properties of one specific high capacity plasma membrane sucrose transporter in detail, we expressed the sucrose/H+ co-transporter from maize ZmSUT1 in Xenopus oocytes. Application of sucrose in an acidic pH environment elicited inward proton currents. Interestingly the sucrose-dependent H+ transport was associated with a decrease in membrane capacitance (Cm). In addition to sucrose Cm was modulated by the membrane potential and external protons. In order to explore the molecular mechanism underlying these Cm changes, presteady-state currents (Ipre) of ZmSUT1 transport were analyzed. Decay of Ipre could be best fitted by double exponentials. When plotted against the voltage the charge Q, associated to Ipre, was dependent on sucrose and protons. The mathematical derivative of the charge Q versus voltage was well in line with the observed Cm changes. Based on these parameters a turnover rate of 500 molecules sucrose/s was calculated. In contrast to gating currents of voltage dependentpotassium channels the analysis of ZmSUT1-derived presteady-state currents in the absence of sucrose (I =Q/t) was sufficient to predict ZmSUT1 transport-associated currents. Conclusions: Taken together our results indicate that in the absence of sucrose, ‘trapped’ protons move back and forth between an outer and an inner site within the transmembrane domains of ZmSUT1. This movement of protons in the electric field of the membrane gives rise to the presteady-state currents and in turn to Cm changes. Upon application of external sucrose, protons can pass the membrane turning presteady-state into transport currents.
Background: Members of the TGF-b superfamily are characterized by a highly promiscuous ligand-receptor interaction as is readily apparent from the numeral discrepancy of only seven type I and five type II receptors available for more than 40 ligands. Structural and functional studies have been used to address the question of how specific signals can be deduced from a limited number of receptor combinations and to unravel the molecular mechanisms underlying the protein-protein recognition that allow such limited specificity. Principal Findings: In this study we have investigated how an antigen binding antibody fragment (Fab) raised against the extracellular domain of the BMP receptor type IA (BMPR-IA) recognizes the receptor’s BMP-2 binding epitope and thereby neutralizes BMP-2 receptor activation. The crystal structure of the complex of the BMPR-IA ectodomain bound to the Fab AbD1556 revealed that the contact surface of BMPR-IA overlaps extensively with the contact surface for BMP-2 interaction. Although the structural epitopes of BMPR-IA to both binding partners coincides, the structures of BMPR-IA in the two complexes differ significantly. In contrast to the structural differences, alanine-scanning mutagenesis of BMPR-IA showed that the functional determinants for binding to the antibody and BMP-2 are almost identical. Conclusions: Comparing the structures of BMPR-IA bound to BMP-2 or bound to the Fab AbD1556 with the structure of unbound BMPR-IA shows that binding of BMPR-IA to its interaction partners follows a selection fit mechanism, possibly indicating that the ligand promiscuity of BMPR-IA is inherently encoded by structural adaptability. The functional and structural analysis of the BMPR-IA binding antibody AbD1556 mimicking the BMP-2 binding epitope may thus pave the way for the design of low-molecular weight synthetic receptor binders/inhibitors.
1. Im Rahmen dieser Arbeit konnten neue Erkenntnisse hinsichtlich des angenomme-nen gerichteten Ionentransports zwischen Schließ- und Nebenzellen von Zea mays gewonnen werden: a. Mittels der Patch-Clamp-Technik wurden in beiden Zelltypen S-Typ-ähnliche Anionenkanäle identifiziert. In Nebenzellen konnten sie durch steigende zytosolische Ca2+-Konzentrationen gehemmt und durch ABA und zytosolische Alkalisierung stimuliert werden. Die S-Typ-Anionenkanäle der Schließzellen wurden hingegen durch eine Alkalisierung kaum beeinflusst und durch steigende zytosolische Ca2+-Konzentrationen stimuliert. b. Darüber hinaus konnte an intakten Mais-Pflanzen mit der Einstich-Elektroden-Technik gezeigt werden, dass Nebenzellen eine gegenläufige Polarisation des Membranpotentials während der Licht-/Dunkel-induzierten Stomabewegung aufweisen. Da das Membranpotential der Nebenzellen von Hordeum vulgare ein zu Mais ähnliches Verhalten während der Stomabewegung zeigte und gegenläu-fig zur Membranpolarisation der benachbarten Schließzellen war, ist ein ähnli-ches Verhalten bei Zea mays Schließzellen naheliegend. c. Zudem wurde in intakten Nebenzellen von Zea mays eine zytosolische Alkali-sierung während der Licht-induzierten Stomaöffnung beobachtet, die bei Stomaschluss wieder auf den Ursprungswert zurückkehrte. d. Mit Hilfe rekonstruktierter 3D-Modelle von intakten Mais-Stomakomplexen konnte ein Volumenverhältnis zwischen Schließ- und Nebenzellen von 1:6 bzw. 1:4 bei geöffneten und geschlossenen Stomata ermittelt werden. Unter Einbeziehung der Vorarbeiten unserer Arbeitsgruppe konnten die hier gewon-nenen Erkenntnisse schlüssig in ein Modell zur Beschreibung des Shuttle-Ionentransports zwischen Neben- und Schließzellen während der Licht-induzierten Stomabewegung eingebunden werden. 2. Des Weiteren wurden die S-Typ-Anionenstromantworten von A. thaliana Schließ-zellen in Patch-Clamp-Experimenten näher untersucht. Dabei waren die S-Typ-Anionenströme bei Ca2+- bzw. ABA-Stimulation in CPK23- und OST1-Verlustmutanten im Vergleich zum Wildtyp stark reduziert. Diese in vivo generierten Daten untermauern die in vitro Ergebnisse der Arbeitsgruppe von Prof. R. Hedrich (Universität Würzburg), dass OST1 und CPK23 Interaktionspartner des S-Typ-Anionenkanals SLAC1 in A. thaliana sind. Das SLAC1-homologe Gen SLAH3 ko-diert für einen Nitrat-permeablen S-Typ-Anionenkanal in Schließzellen, der zudem durch externes Nitrat aktiviert wird. Da in slac1-3 Verlustmutanten S-Typ-ähnliche Anionenströme generiert werden konnten, wenn Nitrat das dominierende Anion dar-stellte oder den Chlorid-basierten Lösungen externes Nitrat zugegeben wurde, scheint SLAH3 unter bestimmten Bedingungen einen alternativen Weg für die Ent-lassung von Anionen aus der Schließzelle darzustellen. 3. Die elektrophysiologische Charakterisierung der R-Typ-Anionenkanäle in A. thaliana Schließzellen belegt, dass dieser Kanal ähnliche Grundcharakteristika aufweist, die schon in Vicia faba beschrieben wurden: eine starke Spannungsab¬hängigkeit, sowie schnelle Aktivierungs- und Deaktivierungskinetiken. Im Gegensatz zu Vicia faba wurde die Spannungsabhängigkeit dieses Kanaltyps in A. thaliana nicht durch externes Malat beeinflusst. Jedoch war unter externen Malatbedingungen die Stromantwort einer almt12-Verlustmutante im Vergleich zu Wildtyp-Schließzellen erheblich reduziert, während unter externen Sulfatbe¬dingungen keine Unterschiede zwischen Wildtyp und almt12-Verlustmutante auszu¬machen waren. ALMT12 scheint demnach für den Malat-aktivierten Teil des R-Typ-Anionenkanals verantwortlich zu sein.
Sphingolipide – Analytik, Biosynthese und Funktion in der Arabidopsis thaliana Pathogenantwort
(2010)
Sphingolipide (SPL) sind wichtige und ubiquitar verbreitete Bestandteile von Biomembranen. Aufgrund der enormen Vielfalt, der komplexen Struktur und diverser physiko-chemischer Eigenschaften der Sphingolipide gestaltet sich die qualitative und quantitative Untersuchung der Sphingolipide allerdings schwierig. In dieser Arbeit konnten, basierend auf publizierten Methoden, analytische Verfahren entwickelt werden, mit deren Hilfe sich die Gehalte spezifischer Sphingolipide in A. thaliana quantitativ nachweisen lassen. Unter Einsatz eines targeted metabolite profiling-Ansatzes wurde die Rolle spezifischer Sphingolipide in der Pflanzen-Pathogen Interaktion charakterisiert. Infiltration von avirulenten P. syringae pv. tomato (Pst) in Blätter von A. thaliana führte zu schnell und transient erhöhten Gehalten der freien Sphingobase Phytosphingosin (t18:0). Im Gegensatz zu avirulenten Pst kam es nach Infiltration von virulenten Pst zu einer schnellen Rückkehr auf Basalniveau und nicht zu einer hypersensitiven Antwort (HR), was auf eine positiv regulatorische Rolle von t18:0 in Abwehrreaktionen von Pflanzen hinwies, z.B. bei der HR. Damit konnte in der vorliegenden Arbeit zum ersten Mal gezeigt werden, dass die Spiegel freier Sphingobasen der Pflanze, insbesondere von t18:0, in Antwort auf bakterielle Pathogene reguliert werden. Diese spezifische Regulation korreliert, in Abhängigkeit von der Pathogeninfektion, mit dem Verlauf der HR. Im Unterschied zu avirulenten Stämmen sind virulente Pst in der Lage, Abwehrreaktionen des Wirtsorganismus zu unterdrücken. Daher tritt keine HR auf, welche die Ausbreitung des Pathogens stoppen könnte. Die unterschiedliche Beeinflussung der t18:0 Gehalte virulenter und avirulenter Stämme zeigte sich auch in Experimenten mit einem anderen P. syringae Stamm. Freie Sphingobasen zeigten in dieser Arbeit typische Merkmale von Signalmolekulen: geringe basale Spiegel, schnelle und transiente Gehaltsanderungen, präzise Regulation sowie spezifische Wirkeffekte. Sphingolipide stellen somit, neben den etwa durch PAMPs ausgelösten und durch Phytohormone vermittelten, weitere Signalwege in der Pflanzen Pathogen Interaktion dar. Die Infiltration von Pst in Blätter der A. thaliana Mutante sbh1-1 führte zu transient erhöhten d18:0 Spiegeln. In dieser Mutante ist die Funktion von einer der zwei Sphingobasen-Hydroxylasen gestört. Wie sich nach Totalhydrolyse zeigte, sind die Gesamtgehalte von t18:0 in der Mutante allerdings nicht reduziert. Dies spricht dafür, dass der pathogenabhängige transiente Anstieg von t18:0 durch de novo Synthese aus d18:0 entsteht und nicht durch Freisetzung aus komplexen Sphingolipiden mittels spezifischer Lipasen. Somit ist die Hydroxylase SBH1 für den schnellen signalvermittelten Anstieg von t18:0 verantwortlich. Neben t18:0 lösen auch strukturell ähnliche freie Sphingobasen, z.B. d18:1 und d18:0, Abwehrreaktionen und Zelltod aus, während andere Sphingobasen (d20:0 und d20:1) sowie Ceramide keine Reaktionen auslösten. Dies weist auch direkt auf die Spezifität der beteiligten Mechanismen hin.
Die Photoaktivierte Adenylatzyklase PAC ist in E. gracilis an der Phototaxis beteiligt und besteht aus den zwei unterschiedlich großen Proteinen PACalpha und PACbeta. Beide besitzen jeweils zwei FAD bindende (BLUF) Domänen F1 und F2 sowie zwei Zyklasedomänen C1 und C2. An den Zyklasedomänen findet die Umsetzung von ATP in cAMP statt und die BLUF-Domänen werden für die Lichtaktivierung benötigt. Für diese Arbeit wurde PAC und Mutanten davon heterolog in Oocyten von Xenopus laevis exprimiert. PAC besitzt bereits im Dunkeln Adenylatzyklaseaktivität, die durch Belichtung erhöht werden kann. Die Zunahme der Aktivität erfolgt mit einer Zeitkonstante von unter 100 ms, die Abnahme nach der Belichtung hat eine Zeitkonstante im Bereich von 10ms. Das für die katalytische Umsetzung in allen Klasse III Nukleotidzyklasen benötigte Dimer zweier Zyklasedomänen ist in PAC das Dimer aus C1 und C2. Durch Messungen mit PAC-Mutanten, bei denen jeweils eine Zyklasedomäne defekt war, konnte gezeigt werden, dass diese Dimerisierung in PACalpha intermolekular auftritt. Ebenso wurde gezeigt, dass ein solches Dimer aus Zyklasedomänen von PACalpha und PACbeta bestehen kann. Der Austausch der Zyklasedomänen von PACalpha durch Zyklasedomänen der Guanylatzyklasen GCY35 und GCY36 aus C. elegans führte zu einem Verlust der Zyklaseaktivität. Die Proteine wurden aber zumindest teilweise korrekt gefaltet, was durch Dimerbildung mit Knockoutmutanten von PAC in Koexpressionsexperimenten gezeigt werden konnte. Die Fusionsproteine aus PACalpha und den CNG-Kanälen CNGA2 und OLF führten in Oocyten zu einer deutlich geringeren Leitwertänderung als eine Expression der Einzelproteine. Sowohl bei einer N-terminalen Fusion des Kanals an PAC als auch bei der C-terminalen Fusion war es jeweils der Kanal, der im Fusionsprotein stark gehemmt war. Eine Deletion des C-Terminus von PACalpha führte zu einem nicht funktionsfähigen Protein, das auch in Koexpression mit PAC-Knockoutmutanten keine messbare Adenylatzyklaseaktivität zeigte. Wurde die F2-Domäne deletiert, so verlor PAC ebenfalls seine Zyklaseaktivität vollständig. Die C1-Domäne war aber korrekt gefaltet, was durch eine Koexpression mit PAC-Mutanten gezeigt werden konnte, die in einer ihrer Zyklasedomänen defekt waren. Beide Chimären aus PACalpha und PACbeta besaßen Adenylatzyklaseaktivität. Diese war bei der Chimäre mit dem C-terminalen Teil von PACalpha deutlich höher als bei der Chimäre mit dem C-terminalen Teil von PACbeta, was darauf hindeutet, dass im C-terminalen Teil von PAC der Grund für den Aktivitätsunterschied zwischen PACalpha und PACbeta liegt. Für die Veränderung der Substratspezifität von einer Adenylat- zu einer Guanylatzyklase waren Mutationen an mindestens drei Aminosäuren erforderlich. Die ebenfalls hergestellten Einzel- und Doppelmutanten verhielten sich wie der Wildtyp oder hatten eine deutlich eingeschränkte Adenylatzyklaseaktivität. Bei der Tripelmutante PACalpha K250E T319G S329Y war Guanylatzyklaseaktivität nachweisbar, die aber geringer war als die noch vorhandene Adenylatzyklaseaktivität. Die Quadrupelmutante PACalpha K250E D317K T319G S329Y zeigte ebenfalls lichtinduzierbare Adenylatzyklaseaktivität, die ca. 0,3% der Aktivität der Wildtyp-PACalpha entsprach. Die Guanylatzyklaseaktivität dieser Mutante war ca. dreifach höher als deren Adenylatzyklaseaktivität. Somit konnte gezeigt werden, dass sich durch die Mutation weniger einzelner Aminosäuren die Substratspezifität von PAC von ATP nach GTP verschieben lässt.
Plants exposed to herbivory may defend themselves by attracting the “enemies of their enemies”, a phenomenon called induced indirect defense (IID). In this process, the de novo production and emission of volatile organic compounds (VOC) by the affected plant is activated via a jasmonic acid (JA) dependent signaling cascade. VOC can be very specific for the inducing herbivore as well as for the emitting plant. Carnivores as predatory mites and parasitoid wasps use these substances as prey- or host-finding cues. If the herbivore is parasitized successfully, its development is slowed and thus the damage of the plant is decreased. Additional abiotic stress may modulate the plant’s ability to produce and/or emit herbivore induced VOC. Ultraviolet (UV) radiation can have multiple physiological effects on plants, amongst others the activation of the expression of genes that are also activated during anti-herbivore defense. To investigate UV effects, foils with different UV transmittance were used to manipulate ambient solar radiation. One foil was permeable for the whole solar spectrum including UV radiation whereas the other excluded radiation below a wavelength of 400 nm. Soybean exposed to UV increased concentrations of isorhamnetin- and quercetin-based flavonoids as effective photo-protective compounds in the leaves and showed a reduced growth compared to plants exposed to ambient radiation lacking UV. The altered chemical composition of the leaves had no effect on food choice and performance of herbivorous Spodoptera frugiperda larvae. Photo-protection by flavonoids seems to be efficient to prevent further UV effects on IID as plants of both treatments emitted the same blend of induced VOC and hence females of the parasitoid Cotesia marginiventris did not prefer plants from on of the treatments in the olfactometer. Nitrogen is one important macronutrient for all trophic levels and thus deficiency of this nutrient was expected to affect IID of soybean profoundly. To manipulate N availability for soybean plants hydroponic culture was used. One treatment was cultured in a standard hydroponic solution whereas in the N deficiency treatment in the solution all salts containing N were replaced with N-free salts. In N deficient plants root biomass was increased to allow the plant to forage more efficiently for the nutrient. Despite this morphological adaptation, photosynthetic efficiency as well as leaf N and soluble protein content were reduced significantly in N deficient soybean. The N deficiency was passed on to the third trophic level as herbivores fed with the affected leaves had a reduced body N content on her part and showed a decreased growth but no feeding preference for the superior food. Parasitoids reared in such N deficient herbivores had significant lower pupal weight compared to parasitoids reared in hosts fed with fully fertilized soybean. N deficient plants emitted a quantitatively altered herbivore induced blend. The two terpenes β-Bergamotene and (E,E)-α-Farnesene were emitted in higher amounts whereas (Z)-3-Hexenyl-α-methylbutyrate was emitted in significantly lower amount. Despite this quantitatively modified VOC blend the parasitoids host-searching behavior was not affected. Heavy metals (HM) are proposed to affect various biochemical pathways in plants including defense pathways by production of reactive oxygen species (ROS) in the tissue. The ROS on its part may affect production and release of endogenous JA, an important messenger in defense signaling. In this study maize plants were grown hydroponically and exposed to different increased concentrations of copper and cadmium. Maize seems to be able to exclude the excess HM from the leaves because the HM were found mainly in the roots and only to a minor degree in the shoots of the plants. Despite this exclusion the HM significantly affected uptake of other metal ions into the plant. The excess of the HM in combination with the attenuated uptake of other ions led to a reduced growth of roots and shoots as well as to reduced photosynthetic efficiency. Thus the nutritional value of the plants for the herbivore was lowered either by direct toxic effects of the HM or indirectly by altering plant chemical composition. S. frugiperda larvae fed with leaves exposed to high HM concentrations showed a significantly reduced growth but they did prefer neither control nor HM treated plants in a food-choice assay. Cu had a transient priming effect on JA as pre-exposure to a high excess of Cu led to higher amounts of herbivore induced JA compared to control plants exposed only to standard concentration of Cu. As anticipated the increased JA was followed by an increase in herbivore induced VOC in high-Cu treated plants caused by a increase of the green leaf volatiles (E)-3-Hexenal, (Z)-3-Hexenol and (Z)-3-Hexenylacetat and the terpenes Linalool, (E)-α-Bergamotene, (E)-β-Farnesene, and β-Sesquiphellandrene. Despite these profound changes in herbivore induced VOC the parasitoids host searching behavior was not affected. As described, the abiotic stresses UV, N deficiency and excess HM affected the morphology and physiology of soybean and maize, the performance of the herbivore S. frugiperda and even the performance of the parasitoid C. marginiventris. However the host searching behavior of the parasitoid was not affected even if the herbivore induced VOC blend was altered. Thus parasitoids seem to be a very reliable defender for plants and IID a very robust way of herbivore defense.
Arabidopsis thaliana (A.th.) mesophyll cells play a pivotal role in the regulation of the drought stress response. The signaling & transport components involved in drought stress regulation within lipid rafts of the plasma membrane were investigated by DRM isolation from highly purified plasma membranes. Detergent treatment with Brij-98 and Triton X-100 resulted in a total of 246 DRM proteins which were identified by nano HPLC-MS/MS. The majority of these proteins could be isolated by Triton X-100 treatment (78.5 %) which remains the ”golden” standard for the isolation of DRMs. Comparing in-gel and in-solution digestion approaches disclosed additional protein identifications for each method but the in-gel approach clearly delivered the majority of the identified proteins (81.8 %). Functionally, a clear bias on signaling proteins was visible – almost 1/3 of the detected DRM proteins belonged to the group of kinases, phosphatases and other signaling proteins. Especially leucine-rich repeat receptor-like protein kinases and calcium-dependent protein kinases were present in Brij-98 & Triton X-100 DRMs, for instance the calcium-dependent protein kinase CPK21. Another prominent member of DRMs was the protein phosphatase 2C 56, ABI1, which is a key regulator of the ABA-mediated drought stress response in A.th. The lipid raft localization of the identified DRM proteins was confirmed by sterol-depletion with the chemical drug MCD. Proteins which depend upon a sterol-rich environment are depleted from DRMs by MCD application. Especially signaling proteins exhibited a strong sterol-dependency. They represented the vast majority (41.5 %) among the Triton X-100 DRM proteins which were no longer detected following MCD treatment. AtRem 1.2 & 1.3 could be shown to be sterol-dependent in mesophyll cells as well as two CPKs (CPK10 & CPK21) and the protein phosphatase ABI1. AtRem 1.2 & 1.3 could be proven to represent ideal plant lipid raft marker proteins due to their strong presence in Triton X-100 DRMs and dependency upon a sterol-rich environment. When fluorescence labeled AtRem 1.2 & 1.3 were transiently expressed in A.th. leaves, they localized to small, patchy structures at the plasma membrane. CPK21 was an intrinsic member of Triton X-100 DRMs and displayed extreme susceptibility to sterol-depletion by MCD in immunological and proteomic assays. Calcium-dependent protein kinases (CPKs) have already been studied to be involved in drought stress regulation, for instance at the regulation of S-type anion channels in guard cells. Hence, further transient expression studies with the anion channel SLAH3, protein kinase CPK21 and its counterpart, protein phosphatase ABI1 were performed in Nicotiana benthamiana. Transient co-expression of CPK21 and the anion channel SLAH3, a highly mesophyll- specific homologue of the guard cell anion channel SLAC1, resulted in a combined, sterol-dependent localization of both proteins in DRMs. Supplementary co-expression of the counterpart protein phosphatase ABI1 induced dislocation of SLAH3 from DRMs, probably by inactivation of the protein kinase CPK21. CPK21 is known to regulate the anion channel SLAH3 by phosphorylation. ABI1 dephosphorylates CPK21 thus leading to deactivation and dislocation of SLAH3 from DRMs. All this regulative events are taking place in DRMs of A.th. mesophyll cells. This study presents the first evidence for a lipid raft-resident protein complex combining signaling and transport functions in A.th. Future perspectives for lipid raft research might target investigations on the lipid raft localization of candidate DRM proteins under presence of abiotic and biotic stress factors. For instance, which alterations in the DRM protein composition are detectable upon exogenous application of the plant hormone ABA? Quantitative proteomics approaches will surely increase our knowledge of the post-transcriptional regulation of gene activity under drought stress conditions.