TY - THES A1 - Gómez-Porras, Judith Lucia T1 - In silico identification of genes regulated by abscisic acid in Arabidopsis thaliana (L.) Heynh. T1 - In silico Identifikation von Abszisinsaeure-regulierten Genen in Arabidopsis thaliana (L.) Heynh. N2 - Abscisic acid (ABA) is a major plant hormone that plays an important role during plant growth and development. During vegetative growth ABA mediates (in part) responses to various environmental stresses such as cold, drought and high salinity. The response triggered by ABA includes changes in the transcript level of genes involved in stress tolerance. The aim of this project was the In silico identification of genes putatively regulated by ABA in A. thaliana. In silico predictions were combined with experimental data in order to evaluate the reliability of computational predictions. Taking advantage of the genome sequence of A. thaliana publicly available since 2000, 1 kb upstream sequences were screened for combinations of cis-elements known to be involved in the regulation of ABA-responsive genes. It was found that around 10 to 20 percent of the genes of A. thaliana might be regulated by ABA. Further analyses of the predictions revealed that certain combinations of cis-elements that confer ABA-responsiveness were significantly over-represented compared with results in random sequences and with random expectations. In addition, it was observed that other combinations that confer ABA-responsiveness in monocotyledonous species might not be functional in A. thaliana. It is proposed that ABA-responsive genes in A. thaliana show pairs of ABRE (abscisic acid responsive element) with MYB binding sites, DRE (dehydration responsive element) or with itself. The analysis of the distances between pairs of cis-elements suggested that pairs of ABREs are bound by homodimers of ABRE binding proteins. In contrast, pairs between MYB binding sites and ABRE, or DRE and ABRE showed a distance between cis-elements that suggested that the binding proteins interact through protein complexes and not directly. The comparison of computational predictions with experimental data confirmed that the regulatory mechanisms leading to the induction or repression of genes by ABA is very incompletely understood. It became evident that besides the cis-elements proposed in this study to be present in ABA-responsive genes, other known and unknown cis-elements might play an important role in the transcriptional regulation of ABA-responsive genes. For example, auxin-related cis elements, or the cis-elements recognized by the NAM-family of transcription factors (Non-Apical meristem). This work documents the use of computational and experimental approaches to analyse possible interactions between cis-elements involved in the regulation of ABA-responsive genes. The computational predictions allowed the distinction between putatively relevant combinations of cis-elements from irrelevant combinations of cis-elements in ABA-responsive genes. The comparison with experimental data allowed to identify certain cis-elements that have not been previously associated to the ABA-mediated transcriptional regulation, but that might be present in ABA-responsive genes (e.g. auxin responsive elements). Moreover, the efforts to unravel the gene regulatory network associated with the ABA-signalling pathway revealed that NAM-transcription factors and their corresponding binding sequences are important components of this network. N2 - Pflanzen reagieren auf aeußere Stresseinwirkung (z.B. Trockenheit oder Hitze) u.a. mit der Bildung bestimmter Hormone. Diese Hormone wiederum bewirken eine Vielzahl komplexer Reaktionen (z.B. im Stoffwechsel und in der Genexpression), die zum Ziel haben, die Pflanzen widerstandsfaehiger gegen die Stresssituation zu machen. Ein wichtiges Stresshormon ist die Abzisinsaeure (ABA, fuer engl. „abscisic acid“). Experimentell koennen Pflanzen durch die Gabe von ABA zu Reaktionen gezwungen werden, die normalerweise nur unter Stressbedingungen beobachtet werden. Hierzu zaehlen vor allem eine Reduktion der Spaltoeffnungen in den Blaettern, um den Wasserverlust infolge von Transpiration zu minimieren, und eine massive Umprogrammierung der Genexpression. In der vorliegenden Arbeit wurde der Einfluss von ABA auf die Genexpression in der Modellpflanze Arabidopsis thaliana untersucht. Hierzu wurden bioinformatorische und experimentelle Ansaetze verknuepft. Die bioinformatorischen Ansaetze bedienten sich der bekannten Sequenz des Genoms von A. thaliana. Mit Hilfe verschiedener geeigneter Computerprogramme wurden im Genom Gene identifiziert, deren Expression potentiell durch ABA reguliert wird. Die so erhaltenen Vorhersagen der verschiedenen Programme wurden miteinander und mit eigenen als auch mit publizierten experimentellen Daten verglichen, um die Qualitaet der Vorhersagen zu beurteilen. Die wichtigste Schlussfolgerung aus den Ergebnissen dieser Arbeit ist, dass gegenwaertig bioinformatorische Ansaetze allein nicht ausreichen, um biologische Prozesse zufriedenstellend zu analysieren. In der vorliegenden Arbeit ermoeglichte erst eine Kombination aus bioinformatorischen und experimentellen Ansaetzen die Generierung neuer, abgesicherter Hypothesen zur ABA-induzierten Umprogrammierung der Genexpression. KW - Bioinformatik KW - Abszisinsäure KW - Promotoren KW - bioinformatics KW - regulation KW - ABA KW - Arabidopsis Y1 - 2005 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus-7401 ER - TY - JOUR A1 - Nietzsche, Madlen A1 - Schiessl, Ingrid A1 - Börnke, Frederik T1 - The complex becomes more complex: protein-protein interactions of SnRK1 with DUF581 family proteins provide a framework for cell and stimulus type-specific SnRK1 signaling in plants JF - Frontiers in plant science N2 - In plants, SNF1-related kinase (SnRK1) responds to the availability of carbohydrates as well as to environmental stresses by down-regulating ATP consuming biosynthetic processes, while stimulating energy-generating catabolic reactions through gene expression and post-transcriptional regulation. The functional SnRK1 complex is a heterotrimer where the catalytic alpha subunit associates with a regulatory beta subunit and an activating gamma subunit. Several different metabolites as well as the hormone abscisic acid (ABA) have been shown to modulate SnRK1 activity in a cell- and stimulus-type specific manner. It has been proposed that tissue- or stimulus-specific expression of adapter proteins mediating SnRK1 regulation can at least partly explain the differences observed in SnRK1 signaling. By using yeast two-hybrid and in planta bi-molecular fluorescence complementation assays we were able to demonstrate that proteins containing the domain of unknown function (DUF) 581 could interact with both isoforms of the SnRK1 alpha subunit (AKIN10/11) of Arabidopsis. A structure/function analysis suggests that the DUF581 is a generic SnRK1 interaction module and co-expression with DUF581 proteins in plant cells leads to reallocation of the kinase to specific regions within the nucleus. Yeast two-hybrid analyses suggest that SnRK1 and DUF581 proteins share common interaction partners inside the nucleus. The analysis of available microarray data implies that expression of the 19 members of the DUF581 encoding gene family in Arabidopsis is differentially regulated by hormones and environmental cues, indicating specialized functions of individual family members. We hypothesize that DUF581 proteins could act as mediators conferring tissue- and stimulus-type specific differences in SnRK1 regulation. KW - Arabidopsis KW - SnRK1 KW - DUF581 KW - protein-protein interaction KW - stress signaling KW - ABA Y1 - 2014 U6 - https://doi.org/10.3389/fpls.2014.00054 SN - 1664-462X VL - 5 PB - Frontiers Research Foundation CY - Lausanne ER -