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21 Hsfs belonging to classes A, B and C were identified in Arabidopsis following the sequencing of its genome. 1.) Cloning of full length and CTD chimeric constructs followed by transient reporter assays in tobacco protoplast using GUS fusion constructs of the promoters of Hsp17.4-CI, synthetic (HSE9) and APX2 showed Hsfs A1a, A1b, A1d, A1e, A2, A3 and A9 to be active. CTDs of Hsfs A7a, A7b and HsfC1 had activity but they showed poor DNA binding in reporter assays. Hsfs A1a, A1b, A1d, A1e, A2 and A3 were able to induce the expression of endogenous Hsps in tomato protoplasts. Interesting differences in promoter selectivity were observed for several Hsfs. 2.) RT-PCR and microarray analysis showed the Hsfs to be differentially expressed depending on tissue, abiotic and biotic stress, hormone and developmental s ge. Interesting patterns of coexpressed Hsfs were observed under different stresses and developmental stages. 3.) HsfA1b was found to be active on the plasmid borne PHsf:GUS reporters of Hsfs A1d, A2, A4a, A7b and B4 when tested in tobacco mesophyll protoplasts. Hsfs A1d, A2, A4a, A7b and B4 when tested in tobacco mesophyll protplasts. HsfA2 was inactive on PHsfA:GUS. HsfB1 showed repression of endogenous activity on several PHsf:GUS reporter constructs. 4.) The transcriptional regulation under heat stress and promoter organization of HsfA2 and FtSH4 (a metalloprotease gene oriented in a head to head fashion with HsfA2 in the Arabidopsis genome, sharing a common promoter region) was studied. The transcripts of FtSH4 and HsfA2 coaccumulated under heat stress. HsfA1b was active on PHsfA2:GUS and PFtSH4:GUS. Hsf binding sites on the intergenic region were determined using promoter deletion constructs in tobacco and Arabidopsis protoplasts. A bidirectional regulation of HsfA2 and FtSH4 by HsfA1b was observed in tobacco protoplast. 5.) Microarray analysis of a HsfA2 T-DNA insertion line vs. wild type Col-0 under heat stress conditions led to identification of a subset of target genes to be severely affected in the absence of HsfA2. Apart from several Hsps (heat stressproteins) and APX2 (Ascorbate peroxidase 2, oxidative stress scavenger), several other unknown genes are affected. APX2 was the most severely affected among them. HsfA2 was able to induce the transcription from its target gene promoters in fusion to GUS in transient reporter assays in tobacco protoplast. The HSE cluster to which HsfA2 binds on the APX2 promoter was also mapped by the same technique. The direct binding of HsfA2 to the promoter of selected target genes in the Arabidopsis genome was also demonstrated by chromatin immunoprecipitation studies.
The experiments presented in my thesis were performed to resolve the following major questions: i. Initial experiments are based on the systematic characterization of the C-terminal domains of all 21 HSFs of Arabidopsis with respect to their transactivation potential as well as intracellular localization. This led to the identification of a signature motif for class A HSFs, that consists of an AHA motif (essential for activator potential), and a C-treminal NES (nuclear export signal). With this signature motif, we could identify homologues sequences of more than 90 HSFs in various plant species. ii. Analysis of developmental expression profiles of HSFs using AtGenExpress microarray data led to the identification of the unique expression of HsfA9 during late seed developmental stages. This was the starting point for the investigation of the regulation of HsfA9 as well as its function during seed development. iii. The seed specific transcription factor ABI3 was identified to be responsible for the regulation of HsfA9 by using knock out mutant lines and ectopically expressing transgenic lines for ABI3 gene. Furthermore, the importance of a RY/Sph motif, as binding site for ABI3 on HsfA9 promoter has been analyzed with transient GUS reporter assays. In addition, contribution of component(s) of ABA (abscisic acid) signaling cascade as a functional interacting partner of ABI3 on HsfA9 promoter has been shown and discussed. iv. The essential role of HsfA9 as master regulator for the expression of seed specific members of of HSP encoding genes and GolS1 was shown by analyzing transgenic plants ectopically expressing HsfA9 as well as, by carrying out transient GUS reporter assays. Correlating with this, transgenic plants with ectopic expression of HsfA9 showed a thermotolerent phenotype. Furthermore, a model where HsfA9 plays a key function for the regulation of seed expressed genes which might involved in providing dessication tolerance during seed maturation has been proposed.
Das Non-LTR-Retrotransposon TRE5 A.1 aus Dictyostelium discoideum integriert positionsspezifisch 48 ± 2 bp oberhalb von tRNA Genen. Es konnte gezeigt werden, dass TRE5 A.1 Wechselwirkungen zwischen ORF1p und dem RNA Polymerase III spezifischen Transkriptionsfaktor DdTFIIIB nutzt, um seinen Integrationsort zu identifizieren. Damit wurden in dieser Arbeit erstmals direkte Proteininteraktionen zwischen einem Non-LTR-Retrotransposon und Komponenten des Chromatins zur Definition des Integrationsortes nachgewiesen. DdTFIIIB wurde durch Blastp Suchen in silico identifiziert. Wie auch in S. cerevisiae wird innerhalb des D. discoideum TFIIIB Komplexes eine stabile Interaktion zwischen der N terminal gelegenen Helix H2 von DdTBP und dem C Terminus von DdBrf1 gebildet. Es konnte sowohl mittels bakterieller Zweihybrid Versuche als auch durch biochemische Pulldown Experimente gezeigt werden, dass TRE5 A kodiertes ORF1 Protein (ORF1p) mit allen drei Untereinheiten von DdTFIIIB in Wechselwirkung tritt. Am ausgeprägtesten war diese mit DdTBP. Durch Mutations und Deletionsanalysen wurden die Kontaktflächen auf DdTBP und ORF1p näher charakterisiert. Demnach interagiert ORF1p über seinen N Terminus (AS 112 158) mit DdTBP, während die C terminalen 40 Aminosäuren sowohl von DdBrf1 als auch von ORF1p beansprucht werden und beide Proteine vermutlich um diese Bindestelle konkurrieren. DdTBP bindet hauptsächlich mit der C terminalen  Helix H2’ an ORF1p. Eine wichtige Position für diese Interaktion ist Ser195 auf DdTBP. Obwohl HsTBP selbst nicht mit ORF1p interagiert, kann die Einführung der Helix H2’ aus DdTBP in das humane Protein die Interaktion mit ORF1p wiederherstellen. Interaktionen zwischen DdTFIIIB und TRE5 A ORF2p wurden nicht detektiert, allerdings konnte ein vermutliches Dimerisationsmotiv in ENp entdeckt werden. Für weiterführende Versuche, die die Relevanz der hier gefundenen Proteininteraktionen für die Target Identifizierung in D. discoideum Zellen untersuchen soll, wurden in dieser Arbeit zwei monoklonale Antikörper gegen DdTBP und einen zufällig entdeckten „Epitop Tag“ isoliert und charakterisiert. Die genaue Rolle von ORF1p während der Retrotransposition von TRE5 A.1 ist noch ungeklärt. Erste grundlegende Einblicke weisen darauf hin, dass ORF1p Teil des Präintegrationskomplexes von TRE5 A sein muss.