TY - THES A1 - Welsch, Maryna T1 - Investigation of the stress tolerance regulatory network integration of the NAC transcription factor JUNGBRUNNEN1 (JUB1) T1 - Untersuchung des Stresstoleranz-Regulationsnetzwerks des NAC-Transkriptionsfaktors JUNGBRUNNEN1 (JUB1) N2 - The NAC transcription factor (TF) JUNGBRUNNEN1 (JUB1) is an important negative regulator of plant senescence, as well as of gibberellic acid (GA) and brassinosteroid (BR) biosynthesis in Arabidopsis thaliana. Overexpression of JUB1 promotes longevity and enhances tolerance to drought and other abiotic stresses. A similar role of JUB1 has been observed in other plant species, including tomato and banana. Our data show that JUB1 overexpressors (JUB1-OXs) accumulate higher levels of proline than WT plants under control conditions, during the onset of drought stress, and thereafter. We identified that overexpression of JUB1 induces key proline biosynthesis and suppresses key proline degradation genes. Furthermore, bZIP63, the transcription factor involved in proline metabolism, was identified as a novel downstream target of JUB1 by Yeast One-Hybrid (Y1H) analysis and Chromatin immunoprecipitation (ChIP). However, based on Electrophoretic Mobility Shift Assay (EMSA), direct binding of JUB1 to bZIP63 could not be confirmed. Our data indicate that JUB1-OX plants exhibit reduced stomatal conductance under control conditions. However, selective overexpression of JUB1 in guard cells did not improve drought stress tolerance in Arabidopsis. Moreover, the drought-tolerant phenotype of JUB1 overexpressors does not solely depend on the transcriptional control of the DREB2A gene. Thus, our data suggest that JUB1 confers tolerance to drought stress by regulating multiple components. Until today, none of the previous studies on JUB1´s regulatory network focused on identifying protein-protein interactions. We, therefore, performed a yeast two-hybrid screen (Y2H) which identified several protein interactors of JUB1, two of which are the calcium-binding proteins CaM1 and CaM4. Both proteins interact with JUB1 in the nucleus of Arabidopsis protoplasts. Moreover, JUB1 is expressed with CaM1 and CaM4 under the same conditions. Since CaM1.1 and CaM4.1 encode proteins with identical amino acid sequences, all further experiments were performed with constructs involving the CaM4 coding sequence. Our data show that JUB1 harbors multiple CaM-binding sites, which are localized in both the N-terminal and C-terminal regions of the protein. One of the CaM-binding sites, localized in the DNA-binding domain of JUB1, was identified as a functional CaM-binding site since its mutation strongly reduced the binding of CaM4 to JUB1. Furthermore, JUB1 transactivates expression of the stress-related gene DREB2A in mesophyll cells; this effect is significantly reduced when the calcium-binding protein CaM4 is expressed as well. Overexpression of both genes in Arabidopsis results in early senescence observed through lower chlorophyll content and an enhanced expression of senescence-associated genes (SAGs) when compared with single JUB1 overexpressors. Our data also show that JUB1 and CaM4 proteins interact in senescent leaves, which have increased Ca2+ levels when compared to young leaves. Collectively, our data indicate that JUB1 activity towards its downstream targets is fine-tuned by calcium-binding proteins during leaf senescence. N2 - Der NAC Transkriptionsfaktor (TF) JUNGBRUNNEN1 (JUB1) ist ein wichtiger negativer Regulator der Pflanzenseneszenz, Gibberellinsäure- (GA) und Brassinosteroid- (BR) Biosynthese in Arabidopsis thaliana. Die Überexpression von JUB1 fördert die Langlebigkeit und erhöht die Toleranz gegenüber Trockenheit und anderen abiotischen Belastungen. Bei anderen Pflanzenarten, einschließlich Tomaten und Bananen, wurde eine ähnliche Rolle von JUB1 beobachtet. Unsere Daten zeigen, dass JUB1 Überexpressionslinien im Vergleich zu WT-Pflanzen sowohl unter Kontrollbedingungen, als auch zu Beginn und während späterer Stadien von Trockenstress größere Mengen an Prolin akkumulieren. Wir haben festgestellt, dass die Überexpression von JUB1 die Schlüsselbiosynthese von Prolin induziert und Schlüsselgene für den Abbau von Prolin unterdrückt. Darüber hinaus wurde bZIP63, ein am Prolinstoffwechsel beteiligter Transkriptionsfaktor, mittels Yeast One-Hybrid-System (Y1H) und Chromatin-Immunopräzipitation (ChIP) als neues nachgeschaltetes Ziel von JUB1 identifiziert. Basierend auf dem Electrophoretic Mobility Shift Assay (EMSA) konnte die direkte Bindung von JUB1 an bZIP63 jedoch nicht bestätigt werden. Unsere Daten zeigen, dass JUB1-OXs unter Kontrollbedingungen eine niedrigere stomatale Leitfähigkeit aufweisen. Allerdings verbessert eine selektive Überexpression von JUB1 in den Schließzellen die Trockenstresstoleranz bei Arabidopsis nicht. Darüber hinaus hängt der trockenheitstolerante Phänotyp von JUB1 nicht allein von der transkriptionellen Kontrolle des DREB2A-Gens ab. Unsere Daten legen daher nahe, dass JUB1 durch die Regulierung mehrerer Komponenten Toleranz gegenüber Trockenstress verleiht. Bis heute konzentrierte sich keine der bisherigen Studien zum regulatorischen Netzwerk von JUB1 auf die Identifizierung von Protein-Protein-Interaktionen. Wir führten deshalb einen Hefe-Zwei-Hybrid-Screen (Y2H) durch, der mehrere Protein-Interaktoren von JUB1 identifizierte, von denen zwei Calcium-bindende Proteine sind (CaM1 und CaM4). Beide Proteine interagieren mit JUB1 im Kern von Arabidopsis-Protoplasten. Darüber hinaus wird JUB1 mit den CaM1- und CaM4-Genen unter den gleichen Bedingungen exprimiert und kolokalisiert mit den Proteinen im Zellkern von Arabidopsis thaliana-Protoplasten. Unsere Daten zeigen, dass JUB1 mehrere CaM-Bindungsstellen aufweist, die sowohl in der N-terminalen, als auch in der C-terminalen Region des Proteins lokalisiert sind. Eine der CaM-Bindungsstellen, die in der DNA-Bindungsdomäne von JUB1 lokalisiert ist, wurde als funktionelle und aktive CaM-Bindungsstelle identifiziert, da ihre Mutation die Bindung von CaM4 an JUB1 stark reduzierte. Darüber hinaus transaktiviert JUB1 die Expression des stressbezogenen Gens DREB2A in Mesophyllzellen. Dieser Effekt wird deutlich reduziert, wenn auch das Calcium-bindende Protein CaM4 exprimiert wird. Die Überexpression beider Gene in Arabidopsis führt zum frühen Seneszenz-Phänotyp, der durch einen verminderten Chlorophyllgehalt und eine veränderte SAGs-Expression im Vergleich zu einzelnen JUB1-Überexpressoren beobachtet wird. Unsere Daten zeigen auch, dass JUB1- und CaM4-Proteine in den seneszenten Blättern, die im Vergleich zu jungen Blättern erhöhte Ca2+-spiegel aufweisen, interagieren. Zusammenfassend weisen unsere Daten darauf hin, dass während der Blattseneszenz die Aktivität von JUB1 gegenüber seinen nachgeschalteten Zielen durch die Calcium-bindenden Proteine fein abgestimmt wird. KW - transcription factor KW - senescence KW - calmodulin KW - JUB1 KW - CaM4 KW - drought stress KW - CaM4 KW - JUB1 KW - calmodulin KW - Trockenstress KW - Seneszenz KW - Transkriptionsfaktor Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-547310 ER - TY - JOUR A1 - Ebrahimian-Motlagh, Saghar A1 - Ribone, Pamela A. A1 - Thirumalaikumar, Venkatesh P. A1 - Allu, Annapurna Devi A1 - Chan, Raquel L. A1 - Mueller-Roeber, Bernd A1 - Balazadeh, Salma T1 - JUNGBRUNNEN1 Confers Drought Tolerance Downstream of the HD-Zip I Transcription Factor AtHB13 JF - Frontiers in plant science N2 - Low water availability is the major environmental factor limiting growth and productivity of plants and crops and is therefore considered of high importance for agriculture affected by climate change. Identifying regulatory components controlling the response and tolerance to drought stress is thus of major importance. The NAC transcription factor (TF) JUNGBRUNNEN1 (JUB1) from Arabidopsis thaliana extends leaf longevity under non-stress growth conditions, lowers cellular hydrogen peroxide (H2O2) level, and enhances tolerance against heat stress and salinity. Here, we additionally find that JUB1 strongly increases tolerance to drought stress in Arabidopsis when expressed from both, a constitutive (CaMV 35S) and an abiotic stress-induced (RD29A) promoter. Employing a yeast one-hybrid screen we identified HD-Zip class I TF AtHB13 as an upstream regulator of JUB1. AtHB13 has previously been reported to act as a positive regulator of drought tolerance. AtHB13 and JUB1 thereby establish a joint drought stress control module. KW - Arabidopsis KW - transcription factor KW - drought KW - JUB1 KW - HB13 Y1 - 2017 U6 - https://doi.org/10.3389/fpls.2017.02118 SN - 1664-462X VL - 8 PB - Frontiers Research Foundation CY - Lausanne ER - TY - GEN A1 - Machens, Fabian A1 - Balazadeh, Salma A1 - Müller-Röber, Bernd A1 - Messerschmidt, Katrin T1 - Synthetic Promoters and Transcription Factors for Heterologous Protein Expression in Saccharomyces cerevisiae N2 - Orthogonal systems for heterologous protein expression as well as for the engineering of synthetic gene regulatory circuits in hosts like Saccharomyces cerevisiae depend on synthetic transcription factors (synTFs) and corresponding cis-regulatory binding sites. We have constructed and characterized a set of synTFs based on either transcription activator-like effectors or CRISPR/Cas9, and corresponding small synthetic promoters (synPs) with minimal sequence identity to the host’s endogenous promoters. The resulting collection of functional synTF/synP pairs confers very low background expression under uninduced conditions, while expression output upon induction of the various synTFs covers a wide range and reaches induction factors of up to 400. The broad spectrum of expression strengths that is achieved will be useful for various experimental setups, e.g., the transcriptional balancing of expression levels within heterologous pathways or the construction of artificial regulatory networks. Furthermore, our analyses reveal simple rules that enable the tuning of synTF expression output, thereby allowing easy modification of a given synTF/synP pair. This will make it easier for researchers to construct tailored transcriptional control systems. T3 - Zweitveröffentlichungen der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe - 393 KW - JUB1 KW - chimeric transcription factors KW - dead Cas9 KW - gene expression KW - synthetic biology KW - synthetic circuits KW - transcriptional regulation Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-403804 ER - TY - JOUR A1 - Machens, Fabian A1 - Balazadeh, Salma A1 - Müller-Röber, Bernd A1 - Messerschmidt, Katrin T1 - Synthetic Promoters and Transcription Factors for Heterologous Protein Expression in Saccharomyces cerevisiae JF - Frontiers in Bioengineering and Biotechnology N2 - Orthogonal systems for heterologous protein expression as well as for the engineering of synthetic gene regulatory circuits in hosts like Saccharomyces cerevisiae depend on synthetic transcription factors (synTFs) and corresponding cis-regulatory binding sites. We have constructed and characterized a set of synTFs based on either transcription activator-like effectors or CRISPR/Cas9, and corresponding small synthetic promoters (synPs) with minimal sequence identity to the host’s endogenous promoters. The resulting collection of functional synTF/synP pairs confers very low background expression under uninduced conditions, while expression output upon induction of the various synTFs covers a wide range and reaches induction factors of up to 400. The broad spectrum of expression strengths that is achieved will be useful for various experimental setups, e.g., the transcriptional balancing of expression levels within heterologous pathways or the construction of artificial regulatory networks. Furthermore, our analyses reveal simple rules that enable the tuning of synTF expression output, thereby allowing easy modification of a given synTF/synP pair. This will make it easier for researchers to construct tailored transcriptional control systems. KW - JUB1 KW - synthetic biology KW - transcriptional regulation KW - gene expression KW - synthetic circuits KW - dead Cas9 KW - chimeric transcription factors Y1 - 2017 U6 - https://doi.org/10.3389/fbioe.2017.00063 SN - 2296-4185 VL - 5 SP - 1 EP - 11 PB - Frontiers CY - Lausanne ER -