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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.