TY - JOUR A1 - Brand, Susanne A1 - Amann, Kerstin A1 - Mandel, Philipp A1 - Zimnol, Anna A1 - Schupp, Nicole T1 - Oxidative DNA Damage in Kidneys and Heart of Hypertensive Mice Is Prevented by Blocking Angiotensin II and Aldosterone Receptors JF - PLOS ONE N2 - INTRODUCTION: Recently, we could show that angiotensin II, the reactive peptide of the blood pressure-regulating renin-angiotensin-aldosterone-system, causes the formation of reactive oxygen species and DNA damage in kidneys and hearts of hypertensive mice. To further investigate on the one hand the mechanism of DNA damage caused by angiotensin II, and on the other hand possible intervention strategies against end-organ damage, the effects of substances interfering with the renin-angiotensin-aldosterone-system on angiotensin II-induced genomic damage were studied. METHODS: In C57BL/6-mice, hypertension was induced by infusion of 600 ng/kg • min angiotensin II. The animals were additionally treated with the angiotensin II type 1 receptor blocker candesartan, the mineralocorticoid receptor blocker eplerenone and the antioxidant tempol. DNA damage and the activation of transcription factors were studied by immunohistochemistry and protein expression analysis. RESULTS: Administration of angiotensin II led to a significant increase of blood pressure, decreased only by candesartan. In kidneys and hearts of angiotensin II-treated animals, significant oxidative stress could be detected (1.5-fold over control). The redox-sensitive transcription factors Nrf2 and NF-κB were activated in the kidney by angiotensin II-treatment (4- and 3-fold over control, respectively) and reduced by all interventions. In kidneys and hearts an increase of DNA damage (3- and 2-fold over control, respectively) and of DNA repair (3-fold over control) was found. These effects were ameliorated by all interventions in both organs. Consistently, candesartan and tempol were more effective than eplerenone. CONCLUSION: Angiotensin II-induced DNA damage is caused by angiotensin II type 1 receptor-mediated formation of oxidative stress in vivo. The angiotensin II-mediated physiological increase of aldosterone adds to the DNA-damaging effects. Blocking angiotensin II and mineralocorticoid receptors therefore has beneficial effects on end-organ damage independent of blood pressure normalization. KW - aldosterone KW - oxidative stress KW - transcription factors KW - kidneys KW - heart KW - hypertension KW - DNA damage KW - blood pressure Y1 - 2014 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-118011 SN - 1932-6203 VL - 9 IS - 12 ER - TY - JOUR A1 - Hyun, Tae Kyung A1 - van der Graaff, Eric A1 - Albacete, Alfonso A1 - Eom, Seung Hee A1 - Grosskinsky, Dominik K. A1 - Böhm, Hannah A1 - Janschek, Ursula A1 - Rim, Yeonggil A1 - Ali, Walid Wahid A1 - Kim, Soo Young A1 - Roitsch, Thomas T1 - The Arabidopsis PLAT Domain Protein1 is Critically Involved in Abiotic Stress Tolerance JF - PLOS ONE N2 - Despite the completion of the Arabidopsis genome sequence, for only a relatively low percentage of the encoded proteins experimental evidence concerning their function is available. Plant proteins that harbour a single PLAT (Polycystin, Lipoxygenase, Alpha-toxin and Triacylglycerol lipase) domain and belong to the PLAT-plant-stress protein family are ubiquitously present in monocot and dicots. However, the function of PLAT-plant-stress proteins is still poorly understood. Therefore, we have assessed the function of the uncharacterised Arabidopsis PLAT-plant-stress family members through a combination of functional genetic and physiological approaches. PLAT1 overexpression conferred increased abiotic stress tolerance, including cold, drought and salt stress, while loss-of-function resulted in opposite effects on abiotic stress tolerance. Strikingly, PLAT1 promoted growth under non-stressed conditions. Abiotic stress treatments induced PLAT1 expression and caused expansion of its expression domain. The ABF/ABRE transcription factors, which are positive mediators of abscisic acid signalling, activate PLAT1 promoter activity in transactivation assays and directly bind to the ABRE elements located in this promoter in electrophoretic mobility shift assays. This suggests that PLAT1 represents a novel downstream target of the abscisic acid signalling pathway. Thus, we showed that PLAT1 critically functions as positive regulator of abiotic stress tolerance, but also is involved in regulating plant growth, and thereby assigned a function to this previously uncharacterised PLAT domain protein. The functional data obtained for PLAT1 support that PLAT-plant-stress proteins in general could be promising targets for improving abiotic stress tolerance without yield penalty. KW - salicylic acid KW - gene expression KW - signal transduction KW - cold stress KW - salt stress KW - abscisic acid KW - endoplasmatic reticulum KW - transcription factors KW - pseudomonas syringae KW - plants response Y1 - 2014 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-114648 VL - 9 IS - 11 ER - TY - THES A1 - Hartmann, Laura T1 - Die funktionelle Rolle der Transkriptionsfaktoren bZIP1 und bZIP53 in der Arabidopsis thaliana- Wurzel nach Salstress T1 - The functional role of bZIP1 and bZIP53 transcription factors in salt treated roots of Arabisopsis thaliana N2 - Die zunehmende Versalzung des Bodens führt weltweit zu starken Ernteeinbußen. Ob- wohl die Wurzeln der Pflanzen als erstes mit dem Salzstress in Berührung kommen, ist noch nicht viel über Signaltransduktionswege in Wurzeln zur Anpassung der Pflanze an Salzstress bekannt. Die bZIP-Transkriptionsfaktoren der Gruppe S1, bZIP1 und bZIP53, werden gewebespezifisch in der Wurzel nach Salzstress aktiviert. In dieser Arbeit werden diese bZIPs in ein Netzwerk eingeordnet, von der Aktivierung der Tran- skriptionsfaktoren bis zur Funktion in der Regulation des Stoffwechsels in der salzgest- ressten Pflanze. Die Aktivierung von bZIP1 kann über verschiedene sowohl ionische als auch osmotische Stimuli erfolgen und ist abhängig von Calcium, der HEXOKINASE 1 und SnRK1- Kinasen (Snf1 RELATED PROTEIN KINASE 1). Die dunkelinduzierte Expression von bZIP1 wird HXK1-abhängig durch Glucose inhibiert, bei Energiemangelbedingungen ist die Aktivierung von bZIP1 SnRK1-abhängig. Beide Enzyme spielen auch in der salzinduzierten Expression von bZIP1 eine Rolle. Über Transkriptom- und Me- tabolomanalysen kann gezeigt werden, dass bZIP1 und bZIP53 an der Umprogram- mierung des Kohlenhydrat- und Aminosäuremetabolismus teilhaben. Besonders Gene der Glukoneogenese (PYRUVAT ORTHOPHOSPHAT DIKINASE und FRUCTOSE- 1,6-BISPHOS- PHATASE) bzw. des Aminosäurekatabolismus (BRANCHED- CHAIN AMINO ACID TRANSAMINASE 2, METHYLCROTONYL- COA-CARBOXYLASE A und HOMOGENTISATE 1,2-DIOXYGENASE ) werden von den Transkriptionsfaktoren reguliert. Das spricht für eine Umprogrammierung des Metabolismus und der Mobilisierung von Energie aus Aminosäuren zur Anpassung an die Stressbedingungen. Die Transkriptionsfaktoren der Gruppe S1 bilden vorzugsweise Heterodimere mit der Gruppe C. Mit Mutantenanalysen, die zum einen die Transkriptionsfaktoren des C/S1-Netzwerks und zum anderen Komponenten der Abscisinsäure (ABA) abhängigen Signaltransduktion beinhalten, konnte ein Signaltransduktionsnetzwerk aufgestellt werden, das die Antwort auf abiotischen Stress mittels des Signalwegs über ABA, SnRK2 und AREB (ABA RESPONSIVE ELEMENTS-BINDING PROTEIN) mit der SnRK1-vermittelten Antwort auf Energiemangelbedingungen in der Pflanze verknüpft. Die gefundenen stress- bzw. energieresponsiven Gene konnten nach den Mutantenana- lysen auf Grund ihrer unterschiedlichen Regulation in vier Klassen eingeteilt werden, wovon nur eine, die Klasse 4, von dem C/S1 Netzwerk reguliert wird. Die Klassen 1- 3 sind unabhängig von den bZIP-Transkriptionsfaktoren der Gruppe C. Die Klasse 1 bilden typische ABA-responsive Gene, die von den Gruppe A-bZIPs reguliert werden. Faktoren der Gruppe A sind auch an der Expression der Gene der Klasse 2 beteiligt, diese werden aber auch durch bZIP1 und bZIP53 induziert. Dieser Klasse konnten Gene zugeordnet werden, die im Abbau verzweigtkettiger Aminosäuren eine Rolle spielen. Am Aminosäureabbau sind außerdem die Gene der Klasse 2 beteiligt. Für diese Gene konnte eine Expressionsregulation durch bZIP1 und bZIP53 gezeigt werden. Für die Bestimmung möglicher Heterodimerisierungspartner bedarf es noch weiterer Analysen. Dieses Model, das den abitoschen Stress abhängigen ABA-Signalweg mit dem ener- gieabhängigen SnRK1-Signaltransduktionsweg verknüpft, zeigt die präzise Regulation von mindestens 4 Gen-Klassen, deren Expression durch die Kombination verschiedener bZIP-Transkriptionsfaktoren aktiviert wird. N2 - Increasing salinization of soil has led to significant crop loss worldwide. Notwith- standing the fact that plant roots are the first to be affected by salt stress, signal transduction pathways in roots for salt stress adaptation are still mostly unknown In this work the group S1 bZIP transcription factors bZIP1 and bZIP53 that are spe- cifically induced by salt stress in roots, were functionally characterized with respect to their role in salt stress response in plants. Transcriptional activation of bZIP1 can be mediated by both ionic and osmotic stimuli and is dependent on Ca2+, HEXO- KINASE 1 (HXK1) and the SnRK1 kinases (Snf1 RELATED PROTEIN KINASE 1). Dark induced expression of bZIP1 is inhibited by glucose depending on HXK1 acti- vity. In starvation conditions the transcription of bZIP1 is mediated by SnRK1. Here both signaling enzymes are shown to be involved in salt induced bZIP1 transcripti- on. Transcriptome and metabolome analyses reveal an important function of bZIP1 and bZIP53 concerning the reprogramming of primary carbohydrate and amino acid metabolism during salt stress in the Arabidopsis root. Particularly genes involved in gluconeogenesis (PYRUVAT ORTHOPHOSPHAT DIKINASE and FRUCTOSE-1,6- BISPHOSPHATASE )or amino acid catabolism (BRANCHED- CHAIN AMINO ACID TRANSAMINASE 2, METHYLCROTONYL- COA-CARBOXYLASE A and HOMO- GENTISATE 1,2-DIOXYGENASE) are regulated by these transcription factors. This points to reprogramming of metabolism and remobilization of energy by amino acid degradation under stress. Group S1 bZIPs preferably form heterodimers with group C bZIP transcription factors. Mutant analyses of C/S1 bZIPs and ABA signaling com- ponents, respectively, revealed a complex network connecting abiotic stress responses via ABA-SnRK2-AREB (ABA RESPONSIVE ELEMENTS-BINDING PROTEIN) to SnRK1 mediated starvation responses. The detected genes were grouped in four classes according to their different regulation, of which only class 4 is regulated by the C/S1 network. Classes 1-3 are controlled independently of group C transcription factors. Class 1 contains typical ABA responsive genes, regulated by group A bZIPs. These are also involved in gene expression of class 2 genes, which are as well induced by bZIP1 and bZIP53. Genes of branched chain amino acid catabolism belong to this class. Al- so involved in amino acid catabolism are genes of class 2, these genes were shown to be transcriptionally regulated by bZIP1 and bZIP53. Further analyses are required to reveal possible heterodimerization partners. This model, that links the abiotic stress responding ABA pathway to the energy dependent SnRK1 signaling pathway, reveals at least four gene classes that are very precisely regulated by combining different bZIP transcription factors. KW - Salzstress KW - salt KW - Transkriptionsfaktor KW - Ackerschmalwand KW - transcription factors KW - root KW - Wurzel Y1 - 2014 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-99423 ER -