@article{Schlagenhauf2022, author = {Schlagenhauf, Ulrich}, title = {On the role of dietary nitrate in the maintenance of systemic and oral health}, series = {Dentistry Journal}, volume = {10}, journal = {Dentistry Journal}, number = {5}, issn = {2304-6767}, doi = {10.3390/dj10050084}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-275168}, year = {2022}, abstract = {The assessment of the significance of nitrates ingested with food has undergone a fundamental change in recent years after many controversial discussions. While for a long time, a diet as low in nitrates as possible was advocated on the basis of epidemiological data suggesting a cancer-promoting effect of nitrate-rich diets, more recent findings show that dietary nitrate, after its conversion to nitrite by nitrate-reducing bacteria of the oral microbiota, is an indispensable alternative source for the formation of nitric oxide (NO), which comprises a key element in the physiology of a variety of central body functions such as blood pressure control, defense against invading bacteria and maintenance of a eubiotic microbiota in the gut and oral cavity. This compact narrative review aims to present the evidence supported by clinical and in vitro studies on the ambivalent nature of dietary nitrates for general and oral health and to explain how the targeted adjuvant use of nitrate-rich diets could open new opportunities for a more cause-related control of caries and periodontal disease.}, language = {en} } @article{KorkmazPuladiGalleretal.2021, author = {Korkmaz, Y{\"u}ksel and Puladi, Behrus and Galler, Kerstin and K{\"a}mmerer, Peer W. and Schr{\"o}der, Agnes and G{\"o}lz, Lina and Sparwasser, Tim and Bloch, Wilhelm and Friebe, Andreas and Deschner, James}, title = {Inflammation in the human periodontium induces downregulation of the α\(_1\)- and β\(_1\)-subunits of the sGC in cementoclasts}, series = {International Journal of Molecular Sciences}, volume = {22}, journal = {International Journal of Molecular Sciences}, number = {2}, issn = {1422-0067}, doi = {10.3390/ijms22020539}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-285783}, year = {2021}, abstract = {Nitric oxide (NO) binds to soluble guanylyl cyclase (sGC), activates it in a reduced oxidized heme iron state, and generates cyclic Guanosine Monophosphate (cGMP), which results in vasodilatation and inhibition of osteoclast activity. In inflammation, sGC is oxidized and becomes insensitive to NO. NO- and heme-independent activation of sGC requires protein expression of the α\(_1\)- and β\(_1\)-subunits. Inflammation of the periodontium induces the resorption of cementum by cementoclasts and the resorption of the alveolar bone by osteoclasts, which can lead to tooth loss. As the presence of sGC in cementoclasts is unknown, we investigated the α\(_1\)- and β\(_1\)-subunits of sGC in cementoclasts of healthy and inflamed human periodontium using double immunostaining for CD68 and cathepsin K and compared the findings with those of osteoclasts from the same sections. In comparison to cementoclasts in the healthy periodontium, cementoclasts under inflammatory conditions showed a decreased staining intensity for both α\(_1\)- and β\(_1\)-subunits of sGC, indicating reduced protein expression of these subunits. Therefore, pharmacological activation of sGC in inflamed periodontal tissues in an NO- and heme-independent manner could be considered as a new treatment strategy to inhibit cementum resorption.}, language = {en} } @phdthesis{John2020, author = {John, Vini}, title = {Interaction of mycobacteria with myeloid-derived suppressor cells}, doi = {10.25972/OPUS-18350}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-183501}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2020}, abstract = {Myeloid-derived suppressor cells (MDSCs) constitute of monocytic (M-MDSCs) and granulocytic cell subsets (G-MDSCs)and were initially described as suppressors of T-cell function in tumor microenvironments. Recent studies have shown the involvement of MDSCs in a number of infectious diseases including Mycobacterium tuberculosis (Mtb) infection. MDSCs are tremendously accumulated in patients with Mtb infection and exert a suppressive effect on T cell responses against mycobacteria. Mycobacterium bovis BCG, the only available vaccine against Mtb fails to protect against the adult pulmonary tuberculosis (TB). Understanding the mechanisms of MDSC suppression for immunity against mycobacterial infection will provide a rational basis to improve anti- TB vaccination and host-directed therapies against TB. In this study, we investigated the role of three lipid-rich components of the plasma membrane, Caveolin-1(Cav-1), Acid Sphingomyelinase (ASM) and asialo-GM1 on BCG-activated MDSCs. Cav-1 is one of the vital components of caveolae (plasma membrane invaginations) which regulates apoptosis and lipid metabolism. In this work, we found that MDSCs upregulated Cav-1, TLR4 and TLR2 expression after BCG infection on the cell surface. However, Cav-1 deficiency resulted in a selective defect in the intracellular TLR2 accumulation in the M-MDSC, but not G-MDSC subset. Further analysis indicated no difference in the phagocytosis of BCG by M-MDSCs from WT and Cav1-/- mice but a reduced capacity to up-regulate surface markers, to secrete various cytokines, induce iNOS and NO production. These defects correlated with deficits of Cav1-/- MDSCs in the suppression of T cell proliferation. Among the signaling pathways that were affected by Cav-1 deficiency, we found lower phosphorylation of NF-kB and p38 mitogen-activated protein kinase (MAPK) in BCG - activated MDSCs. ASM is an enzyme present in lysosomes and is translocated to the cell surface where it hydrolyzes sphingomyelin into ceramide. Flow cytometric studies revealed that MDSCs phagocytosed BCG independent of inhibiting ASMase using pharmacological inhibitors (amitryptiline or desipramine) or MDSCs from WT and ASM-/-. Suppression of ASMase or using ASM-/- MDSCs resulted in reduced NO production and decreased cytokine secretion by MDSCs in response to BCG. Furthermore, MDSCs inhibited by amitryptiline had impaired AKT phosphorylation upon BCG infection. Asialo-GM1 is a ganglioside expressed on the cell surface of MDSCs reported to cooperate with TLR2 for activating ERK signaling. Here, in this study, we found that asialo-GM1 expression was upregulated specifically upon mycobacterial infection and not upon any other stimulus. We noted that the soluble form of asialo-GM1 bound to BCG. Flow cytometric studies revealed that blocking 81 asialo-GM1 did not affect the phagocytosis of BCG into MDSCs. Furthermore, blocking of asialo- GM1 had no effect on the cytokine and NO secretion or AKT signaling. Collectively, the data presented in this work implicated that Cav-1, ASM, asialo-GM1 are dispensable for the internalization of BCG. Rather, Cav-1 and ASM are required for the functional activation of MDSCs. Although asialo-GM1 binds to BCG, we did not find any difference in the functional activation of MDSCs after blocking asialo-GM1. This study provides insights into the role of lipid raft components of the MDSC cell membrane during mycobacterial infection.}, subject = {MDSCs}, language = {en} } @article{GambaryanSubramanianKehreretal.2016, author = {Gambaryan, Stepan and Subramanian, Hariharan and Kehrer, Linda and Mindukshev, Igor and Sudnitsyna, Julia and Reiss, Cora and Rukoyatkina, Natalia and Friebe, Andreas and Sharina, Iraida and Martin, Emil and Walter, Ulrich}, title = {Erythrocytes do not activate purified and platelet soluble guanylate cyclases even in conditions favourable for NO synthesis}, series = {Cell Communication and Signaling}, volume = {14}, journal = {Cell Communication and Signaling}, number = {16}, doi = {10.1186/s12964-016-0139-9}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-161223}, year = {2016}, abstract = {Background Direct interaction between Red blood cells (RBCs) and platelets is known for a long time. The bleeding time is prolonged in anemic patients independent of their platelet count and could be corrected by transfusion of RBCs, which indicates that RBCs play an important role in hemostasis and platelet activation. However, in the last few years, opposing mechanisms of platelet inhibition by RBCs derived nitric oxide (NO) were proposed. The aim of our study was to identify whether RBCs could produce NO and activate soluble guanylate cyclase (sGC) in platelets. Methods To test whether RBCs could activate sGC under different conditions (whole blood, under hypoxia, or even loaded with NO), we used our well-established and highly sensitive models of NO-dependent sGC activation in platelets and activation of purified sGC. The activation of sGC was monitored by detecting the phosphorylation of Vasodilator Stimulated Phosphoprotein (VASPS239) by flow cytometry and Western blot. ANOVA followed by Bonferroni's test and Student's t-test were used as appropriate. Results We show that in the whole blood, RBCs prevent NO-mediated inhibition of ADP and TRAP6-induced platelet activation. Likewise, coincubation of RBCs with platelets results in strong inhibition of NO-induced sGC activation. Under hypoxic conditions, incubation of RBCs with NO donor leads to Hb-NO formation which inhibits sGC activation in platelets. Similarly, RBCs inhibit activation of purified sGC, even under conditions optimal for RBC-mediated generation of NO from nitrite. Conclusions All our experiments demonstrate that RBCs act as strong NO scavengers and prevent NO-mediated inhibition of activated platelets. In all tested conditions, RBCs were not able to activate platelet or purified sGC.}, language = {en} } @article{PreisingSchneiderBucheretal.2015, author = {Preising, Christina and Schneider, Reinhard and Bucher, Michael and Gekle, Michael and Sauvant, Christoph}, title = {Regulation of expression of renal organic anion transporters OAT1 and OAT3 in a model of ischemia/reperfusion injury}, series = {Cellular Physiology and Biochemistry}, volume = {37}, journal = {Cellular Physiology and Biochemistry}, number = {1}, doi = {10.1159/000430328}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-144504}, year = {2015}, abstract = {Background: Recently, we gained evidence that impairment of rOat1 and rOat3 expression induced by ischemic acute kidney injury (AKI) is mediated by COX metabolites and this suppression might be critically involved in renal damage. Methods: (i) Basolateral organic anion uptake into proximal tubular cells after model ischemia and reperfusion (I/R) was investigated by fluorescein uptake. The putative promoter sequences from hOAT1 (SLC22A6) and hOAT3 (SCL22A8) were cloned into a reporter plasmid, transfected into HEK cells and (ii) transcriptional activity was determined after model ischemia and reperfusion as a SEAP reporter gen assay. Inhibitors or antagonists were applied with the beginning of reperfusion. Results: By using inhibitors of PKA (H89) and PLC (U73122), antagonists of E prostanoid receptor type 2 (AH6809) and type 4 (L161,982), we gained evidence that I/R induced down regulation of organic anion transport is mediated by COX1 metabolites via E prostanoid receptor type 4. The latter signaling was confirmed by application of butaprost (EP2 agonist) or TCS2510 (EP4 agonist) to control cells. In brief, the latter signaling was verified for the transcriptional activity in the reporter gen assay established. Therein, selective inhibitors for COX1 (SC58125) and COX2 (SC560) were also applied. Conclusion: Our data show (a) that COX1 metabolites are involved in the regulation of renal organic anion transport(ers) after I/R via the EP4 receptor and (b) that this is due to transcriptional regulation of the respective transporters. As the promoter sequences cloned were of human origin and expressed in a human renal epithelial cell line we (c) hypothesize that the regulatory mechanisms described after I/R is meaningful for humans as well.}, language = {en} } @article{SalvadorBurekFoerster2015, author = {Salvador, Ellaine and Burek, Malgorzata and F{\"o}rster, Carola Y.}, title = {Stretch and/or oxygen glucose deprivation (OGD) in an in vitro traumatic brain injury (TBI) model induces calcium alteration and inflammatory cascade}, series = {Frontiers in Cellular Neuroscience}, volume = {9}, journal = {Frontiers in Cellular Neuroscience}, number = {323}, doi = {10.3389/fncel.2015.00323}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-148255}, year = {2015}, abstract = {The blood-brain barrier (BBB), made up of endothelial cells of capillaries in the brain, maintains the microenvironment of the central nervous system. During ischemia and traumatic brain injury (TBI), cellular disruption leading to mechanical insult results to the BBB being compromised. Oxygen glucose deprivation (OGD) is the most commonly used in vitro model for ischemia. On the other hand, stretch injury is currently being used to model TBI in vitro. In this paper, the two methods are used alone or in combination, to assess their effects on cerebrovascular endothelial cells cEND in the presence or absence of astrocytic factors. Applying severe stretch and/or OGD to cEND cells in our experiments resulted to cell swelling and distortion. Damage to the cells induced release of lactate dehydrogenase enzyme (LDH) and nitric oxide (NO) into the cell culture medium. In addition, mRNA expression of inflammatory markers interleukin (I L)-6, IL-1\(\alpha\) chemokine (C-C motif) ligand 2 (CCL2) and tumor necrosis factor (TNF)-\(\alpha\) also increased. These events could lead to the opening of calcium ion channels resulting to excitotoxicity. This could be demonstrated by increased calcium level in OGD-subjected cEND cells incubated with astrocyte-conditioned medium. Furthermore, reduction of cell membrane integrity decreased tight junction proteins claudin-5 and occludin expression. In addition, permeability of the endothelial cell monolayer increased. Also, since cell damage requires an increased uptake of glucose, expression of glucose transporter glut1 was found to increase at the mRNA level after OGD. Overall, the effects of OGD on cEND cells appear to be more prominent than that of stretch with regards to TJ proteins, NO, glutl expression, and calcium level. Astrocytes potentiate these effects on calcium level in cEND cells. Combining both methods to model TBI in vitro shows a promising improvement to currently available models.}, language = {en} } @article{DandekarFieselmannFischeretal.2015, author = {Dandekar, Thomas and Fieselmann, Astrid and Fischer, Eva and Popp, Jasmin and Hensel, Michael and Noster, Janina}, title = {Salmonella - how a metabolic generalist adopts an intracellular lifestyle during infection}, series = {Frontiers in Cellular and Infection Microbiology}, volume = {4}, journal = {Frontiers in Cellular and Infection Microbiology}, number = {191}, doi = {10.3389/fcimb.2014.00191}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-149029}, year = {2015}, abstract = {The human-pathogenic bacterium Salmonella enterica adjusts and adapts to different environments while attempting colonization. In the course of infection nutrient availabilities change drastically. New techniques, "-omics" data and subsequent integration by systems biology improve our understanding of these changes. We review changes in metabolism focusing on amino acid and carbohydrate metabolism. Furthermore, the adaptation process is associated with the activation of genes of the Salmonella pathogenicity islands (SPIs). Anti-infective strategies have to take these insights into account and include metabolic and other strategies. Salmonella infections will remain a challenge for infection biology.}, language = {en} } @article{HoffmannEtzrodtWillkommetal.2015, author = {Hoffmann, Linda S. and Etzrodt, Jennifer and Willkomm, Lena and Sanyal, Abhishek and Scheja, Ludger and Fischer, Alexander W. C. and Stasch, Johannes-Peter and Bloch, Wilhelm and Friebe, Andreas and Heeren, Joerg and Pfeifer, Alexander}, title = {Stimulation of soluble guanylyl cyclase protects against obesity by recruiting brown adipose tissue}, series = {Nature Communications}, volume = {6}, journal = {Nature Communications}, number = {7235}, doi = {10.1038/ncomms8235}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-143127}, year = {2015}, abstract = {Obesity is characterized by a positive energy balance and expansion of white adipose tissue (WAT). In contrast, brown adipose tissue (BAT) combusts energy to produce heat. Here we show that a small molecule stimulator (BAY 41-8543) of soluble guanylyl cyclase (sGC), which produces the second messenger cyclic GMP (cGMP), protects against diet-induced weight gain, induces weight loss in established obesity, and also improves the diabetic phenotype. Mechanistically, the haeme-dependent sGC stimulator BAY 41-8543 enhances lipid uptake into BAT and increases whole-body energy expenditure, whereas ablation of the haeme-containing \(\beta\)\(_{1}\)-subunit of sGC severely impairs BAT function. Notably, the sGC stimulator enhances differentiation of human brown adipocytes as well as induces 'browning' of primary white adipocytes. Taken together, our data suggest that sGC is a potential pharmacological target for the treatment of obesity and its comorbidities.}, language = {en} } @article{MontoyaPelaezSierraAlzateetal.2013, author = {Montoya Pel{\´a}ez, Guillermo L. and Sierra, Jelver A. and Alzate, Fernando and Holzgrabe, Ulrike and Ramirez-Pineda, Jos{\´e} R.}, title = {Pentacyclic triterpenes from Cecropia telenitida with immunomodulatory activity on dendritic cells}, series = {Revista Brasileira de Farmacognosia - Brazilian Journal of Pharmacognosy}, volume = {23}, journal = {Revista Brasileira de Farmacognosia - Brazilian Journal of Pharmacognosy}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-131851}, pages = {754-761}, year = {2013}, abstract = {Pentacyclic triterpenes are a large family of plant metabolites that exhibit a wide array of biological activities. The genus Cecropia, which encompasses many plant species, has been used as traditional medicine for the treatment of inflammatory diseases and is known to produce many active pentacyclic triterpenes. In this study we investigated the chemical composition of a pentacyclic triterpene fraction from the roots of Cecropia telenitida Cuatrec., Urticaceae. A novel compound, which we termed yarumic acid, and four known molecules (serjanic acid, spergulagenic acid A, 20-hydroxy-ursolic acid and goreishic acid I) were isolated and characterised. In a dendritic cell (DC)-based assay, we demonstrated that non-toxic doses of these pentacyclic triterpenes inhibited the secretion of at least one of the proinflammatory cytokines tested (IL-1 beta, IL-12p40, IL-12p70, TNF-alpha). Spergulagenic acid A also inhibited nitric oxide production in lipopolysaccharide-stimulated dendritic cell. Serjanic acid and spergulagenic acid A, which were the most potent abundant compounds in the pentacyclic triterpene fraction, showed the most activity in the dendritic cell-based assay. These results show that all pentacyclic triterpenes might contribute to the anti-inflammatory activities of C. telenitida. Moreover, yarumic acid as well as the four known pentacyclic triterpenes, can be exploited as potential immunomodulatory/anti-inflammatory agents.}, language = {en} } @phdthesis{Mishina2007, author = {Mishina, Tatiana E.}, title = {Mechanisms of local and systemic defences in Arabidopsis thaliana in response to host and non-host strains of Pseudomonas syringae}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-23160}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2007}, abstract = {Stickstoffmonooxid (NO) wird als wichtige Signalkomponente bei der Entwicklung der Hypersensitiven Reaktion beschrieben. Außerdem wird NO eine Rolle als Signalmolek{\"u}l bei der Expression von Abwehrgenen wie PR-1, PAL1 oder Chalkonsynthase (CHS) und bei der Akkumulation von Salicyls{\"a}ure zugeordnet (Durner et al., 1998). In der vorliegenden Arbeit wurden transgene Pflanzen mit ver{\"a}nderten endogenen NO-Spiegeln verwendet, um die Rolle von NO in Pflanze-Pathogen-Interaktionen zu untersuchen. Arabidopsis-Pflanzen, die aufgrund der Expression einer NO Dioxygenase erniedrigte NO-Gehalte aufweisen, zeigen nach einem Angriff avirulenter Pathogene einen abgeschw{\"a}chten oxidative burst und eine reduzierte Expression von Genen des Phenylpropanbiosyntheseweges. Weitere Experimente mit transgenen Pflanzen, die eine bakterielle NO-Synthase exprimieren, legen nahe, dass eine konstitutive Erh{\"o}hung der NO-Spiegel nicht zu einer konstitutiv verst{\"a}rkten Pathogenabwehr f{\"u}hrt. M{\"o}glicherweise ist eine graduelle Steigerung der NO-Gehalte nach Pathogenkontakt f{\"u}r die Induktion pflanzlicher Abwehrreaktionen erforderlich. Im Gegenteil, die NOS-exprimierenden Pflanzen waren anf{\"a}lliger gegen bakterielle Pathogene als Wildtyp-Pflanzen und zeigten eine abgeschw{\"a}chte SAR-Reaktion. Die Ergebnisse deuten auch darauf hin, dass NO eine wichtige Rolle bei der Regulation des Redoxstatus in der Pflanzenzelle spielt. Diese Funktion von NO ist wichtig beim Seneszenzvorgang. Entsprechend der Ergebnisse dieser Arbeit kann NO als negativer Regulator der Blattseneszenz angesehen werden. Die Wirkungsweise von NO auf molekularer Ebene und die Signalkaskaden, in die NO involviert ist, sind immer noch nicht ausreichend verstanden. In zuk{\"u}nftigen Experimenten wird es notwendig sein, die selektive Quantifizierung von NO in intaktem Pflanzengewebe zu gew{\"a}hrleisten, die Proteintargets von NO zu identifizieren und die Struktur und Funktion NO-modifizierter Biomolek{\"u}le zu entschl{\"u}sseln, um die Rolle von NO in Pflanze-Pathogen-Wechselwirkungen besser verstehen zu lernen. Die Nichtwirtsresistenz beruht auf mehreren Verteidigungsebenen, welche konstitutive und induzierte Komponenten beinhalten. Die Bedeutung induzierter Abwehrreaktionen f{\"u}r die Nichtwirtsresistenz gegen bakterielle Pathogene ist nicht vollst{\"a}ndig klar. Die Daten der vorliegenden Arbeit legen nahe, dass das Wachstum von Nichtwirtsbakterien in Arabidopsis-Bl{\"a}ttern durch vorgebildete toxische Substanzen und durch induzierte Zellwandverst{\"a}rkungen gehemmt wird. Nichtwirtsbakterien verursachen eine schnelle Induktion der Expression der Ligninbiosynthesegene PAL1 und BCB, die unabh{\"a}ngig vom Typ III-Sekretionssystem ist und m{\"o}glicherweise zur Papillenbildung beitr{\"a}gt. Dar{\"u}ber hinaus ist die {\"U}berlebensrate der Nichtwirtsbakterien in den extrazellul{\"a}ren R{\"a}umen der Arabidopsis pal1-Mutante h{\"o}her als in Wildtyp-Pflanzen, was die funktionelle Bedeutung der PAL1-Expression bei der Nichtwirtsresistenz verdeutlicht. Außerdem zeigen die Experimente, dass Nichtwirtsbakterien in {\"a}hnlicher Weise wie Wirtsbakterien die Akkumulation von Salicyls{\"a}ure und die Expression von PR-Genen induzieren. Die Induktion dieser Abwehrkomponenten ist abh{\"a}ngig von einem intakten Typ III-Sekretionssystem. Die Signalwege, auf denen nach Kontakt mit Nichtwirtsbakterien und Wirtsbakterien Abwehrreaktionen induziert werden, sind {\"a}hnlich. Es wurden jedoch zwischen zwei verschiedenen Nichtwirtsst{\"a}mmen auch unterschiedliche Signalwege aktiviert, was m{\"o}glicherweise auf ein unterschiedliches Repertoire von TypIII-Effektoren der beiden St{\"a}mme zur{\"u}ckgef{\"u}hrt werden kann. Trotz der Aktivierung dieser induzierten Abwehr zeigen Experimente mit klassischen Abwehrmutanten, dass SA- und JA-abh{\"a}ngige Abwehrreaktionen nicht direkt zur Nichtwirtsresistenz gegen P. syringae beitragen. Weiterhin zeigt diese Arbeit, dass die Nichtwirtsresistenz des Arabidopsis-{\"O}kotyps Col-0 effektiver ist als die des Ler-0-{\"O}kotyps, obwohl bei letzterem die Resistenz gegen virulente Bakterien h{\"o}her ist. Diese Unterschiede scheinen nicht mit der unterschiedlichen Glucosinolatzusammensetzung der beiden {\"O}kotypen im Zusammenhang zu stehen. Um das Verst{\"a}ndnis der Nichtwirtsresistenz von Arabidopsis gegen{\"u}ber P. syringae zu verbessern, k{\"o}nnen in zuk{\"u}nftigen Experimenten Doppel- und Triplemutanten hergestellt werden, die gleichzeitig Defekte in der zellwandabh{\"a}ngigen Abwehr (Lignin- und Callosebiosynthese) und in klassischen, SA-abh{\"a}ngigen Abwehrreaktionen aufweisen. Auch k{\"o}nnen Analysen des Genom-Polymorphismus und der Zusammensetzung von Sekund{\"a}rmetaboliten in den {\"O}kotypen Ler-0 und Col-0 zu einem besseren Verst{\"a}ndnis der Nichtwirtsresistenz f{\"u}hren. Die Resultate dieser Arbeit zeigen, dass ein lokaler, symptomfreier Kontakt von Arabidopsis-Bl{\"a}ttern mit Nichtwirtsbakterien, TTSS-defiziente Bakterien und allgemeine bakterielle Elicitoren (PAMPs) wie Flagellin und Lipopolysaccharide die systemisch erworbene Resistenz innerhalb der Gesamtpflanze hervorrufen. Die symptomlose systemische Resistenzreaktion findet in SAR-defizienten Mutanten nicht statt, wird jedoch in der Jasmonat-insensitiven jar1-Mutante, die keine ISR-Reaktion ausbilden kann, beobachtet. Durch Behandlung von Arabidopsis-Bl{\"a}ttern mit unterschiedlichen Inokuli von virulenten oder avirulenten P. syringae-St{\"a}mmen wurde auch eine deutliche Korrelation des Ausmaßes der SAR-Induktion mit der H{\"o}he der SA-Akkumulation oder der PR-Genexpression, aber nicht mit der Nekrosenbildung oder der JA-Produktion, am Infektionsort festgestellt. Diese Ergebnisse verdeutlichen, dass nicht die Hypersensitive Reaktion oder Gewebenekrosen, sondern m{\"o}glicherweise die St{\"a}rke bestimmter Abwehrreaktionen am Ort der Inokulation zur Ausl{\"o}sung der SAR beitragen. Die Befunde, dass die systemische Resistenz auch durch PAMPs und durch TTSS-defekte P. syringae-St{\"a}mme erh{\"o}ht wird, verdeutlicht die wichtige Rolle von allgemeinen Elicitoren bei der SAR-Induktion. In k{\"u}nftige Experimenten kann untersucht werden, ob verschiedene PAMPs die SAR in synergistischer Weise induzieren und ob allgemeine Elicitoren pilzlicher Herkunft SAR ausl{\"o}sen k{\"o}nnen. Weiterhin k{\"o}nnen die molekulare Prozesse spezifiziert werden, die stromabw{\"a}rts von PAMP-Erkennungsprozessen f{\"u}r die SAR-Ausbildung notwendig sind. In weiteren Experimenten k{\"o}nnte die Hypothese {\"u}berpr{\"u}ft werden, ob einzelner PAMPs als mobile SAR-Langstreckensignale fungieren k{\"o}nnen. Durch phytopathologische Charakterisierung von T-DNA-Knockout-Linien, die Defekte in Genen aufweisen, welche in Arabidopsis nach einer P. syringae-Infektion aufreguliert werden, konnte das FLAVIN-DEPENDENT MONOOXYGENASE1 (FMO1)-Gen als notwendige Komponente der SAR in Arabidopsis identifiziert werden. So bleiben die im Wildtyp induzierten systemischen Abwehrreaktionen und die Erh{\"o}hung der systemischen Resistenz nach lokaler Inokulation mit P. syringae in fmo1-Knockout-Pflanzen vollst{\"a}ndig aus. Weiterhin korreliert die systemische Expression des FMO1-Gens eng mit der SAR-Induktion. So gibt es bei allen Abwehrmutanten, die keine SAR nach Kontakt mit P. syringae ausbilden k{\"o}nnen, keine FMO1-Expression in distalen Bl{\"a}ttern inokulierter Pflanzen. Umgekehrt verh{\"a}lt es sich mit Arabidopsis-Linien, die die SAR ausbilden. Die erhaltenen Ergebnisse deuten darauf hin, dass FMO1 eine wichtige Komponente eines Signalverst{\"a}rkungszyklus darstellt, der in nichtinfizierten, systemischen Teilen der Pflanze wirkt, um die SAR zu erm{\"o}glichen. In k{\"u}nftigen Experimenten soll der postulierte Amplifizierungsmechanismus experimentell verifiziert werden. Die Konstruktion von transgenen Linien, die ein FMO1:GFP-Fusionsprodukt exprimieren, kann Informationen {\"u}ber die zellu{\"a}re Lokalisation des FMO1-Proteins liefern. Weiterhin k{\"o}nnen vergleichende Analysen der chemischen Zusammensetzung von Blattextrakten der fmo1 Knockout-Linien, von FMO1-{\"U}berexprimierern und von Wildtyp-Pflanzen zur Aufkl{\"a}rung der biochemischen Reaktion beitragen, die die FMO1-Monooxygenase katalysiert. In Anlehnung an die Funktion von yFMO, die die einzige Flavin-abh{\"a}ngige Monooxygenase der Hefe darstellt, kann {\"u}berpr{\"u}ft werden, ob FMO1 die korrekte Faltung von Proteinen am endoplasmatischen Retikulum vermittelt. Schließlich kann durch die Identifizierung weitere SAR-Gene nach der beschriebenen Strategie und durch funktionelle Charakterisierung der zugeh{\"o}rigen Proteine das Verst{\"a}ndnis der SAR-Reaktion auf molekularer Ebene weiter verbessert werden.}, subject = {Ackerschmalwand}, language = {en} }