@phdthesis{Pedrotti2018, author = {Pedrotti, Lorenzo}, title = {The SnRK1-C/S1-bZIPs network: a signaling hub in Arabidopsis energy metabolism regulation}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-116080}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2018}, abstract = {The control of energy homeostasis is of pivotal importance for all living organisms. In the last years emerged the idea that many stress responses that are apparently unrelated, are actually united by a common increase of the cellular energy demand. Therefore, the so called energy signaling is activated by many kind of stresses and is responsible for the activation of the general stress response. In Arabidopsis thaliana the protein family SnF1- related protein kinases (SnRK1) is involved in the regulation of many physiological processes but is more known for its involvement in the regulation of the energy homeostasis in response to various stresses. To the SnRK1 protein family belong SnRK1.1 (also known as KIN10), SnRK1.2 (KIN11), and SnRK1.3 (KIN12). SnRK1 exerts its function regulating directly the activity of metabolic enzymes or those of key transcription factors (TFs). The only TFs regulated by SnRK1 identified so far is the basic leucine zipper (bZIP) 63. bZIP63 belongs to the C group of bZIPs (C-bZIPs) protein family together with bZIP9, bZIP10, and bZIP25. SnRK1.1 phosphorylates bZIP63 on three amino acids residues, serine (S) 29, S294, and S300. The phosphorylation of tbZIP63 is strongly related to the energy status of the plant, shifting from almost absent during the normal growth to strongly phosphorylated when the plant is exposed to extended dark. bZIPs normally bind the DNA as dimer in order to regulate the expression of their target genes. C-bZIPs preferentially form dimers with S1-bZIPs, constituting the so called C/S1- bZIPs network. The SnRk1 dependent phosphorylation of bZIP63 regulates its activation potential and its dimerization properties. In particular bZIP63 shift its dimerization preferences according to its phosphorylation status. The non-phosphorylated form of bZIP63 dimerize bZIP1, the phosphorylates ones, instead, forms dimer with bZIP1, bZIP11, and bZIP63 its self. Together with bZIP63, S1-bZIPs are important mediator of part of the huge transcriptional reprogramming induced by SnRK1 in response to extended dark. S1-bZIPs regulate, indeed, the expression of 4'000 of the 10'000 SnRK1-regulated genes in response to energy deprivation. In particular S1-bZIPs are very important for the regulation of many genes encoding for enzymes involved in the amino acid metabolism and for their use as alternative energy source. After the exposition for some hours to extended dark, indeed, the plant make use of every energy substrate and amino acids are considered an important energy source together with lipids and proteins. Interestingly, S1- bZIPs regulate the expression of ETFQO. ETFQO is a unique protein that convoglia the electrons provenienti from the branch chain amino acids catabolism into the mitochondrial electron transport chain. The dimer formed between bZIP63 and bZIP2 recruits SnRK1.1 directly on the chromatin of ETFQO promoter. The recruitment of SnRK1 on ETFQO promoter is associated with its acetylation on the lysine 14 of the histone protein 3 (K14H3). This chromatin modification is normally asociated with an euchromatic status of the DNA and therefore with its transcriptional activation. Beside the particular case of the regulation of ETFQO gene, S1-bZIPs are involved in the regulation of many other genes activated in response of different stresses. bZIP1 is for example an important mediator of the salt stress response. In particular bZIP1 regulates the primary C- and N-metabolism. The expression of bZIP1, in response of both salt ans energy stress seems to be regulated by SnRK1, as it is the expression of bZIP53 and bZIP63. Beside its involvement in the regulation of the energy stress response and salt response, SnRK1 is the primary activators of the lipids metabolism during see germination. SnRK1, indeed, controls the expression of CALEOSINs and OLEOSINs. Those proteins are very important for lipids remobilization from oil droplets. Without their expression seed germination and subsequent establishment do not take place because of the absence of fuel to sustain these highly energy costly processes, which entirely depend on the catabolism of seed storages.}, subject = {Ackerschmalwand}, language = {en} } @phdthesis{Hartmann2014, author = {Hartmann, Laura}, title = {Die funktionelle Rolle der Transkriptionsfaktoren bZIP1 und bZIP53 in der Arabidopsis thaliana- Wurzel nach Salstress}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-99423}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2014}, abstract = {Die zunehmende Versalzung des Bodens f{\"u}hrt weltweit zu starken Ernteeinbußen. Ob- wohl die Wurzeln der Pflanzen als erstes mit dem Salzstress in Ber{\"u}hrung kommen, ist noch nicht viel {\"u}ber 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 {\"u}ber 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 f{\"u}r 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 {\"u}ber ABA, SnRK2 und AREB (ABA RESPONSIVE ELEMENTS-BINDING PROTEIN) mit der SnRK1-vermittelten Antwort auf Energiemangelbedingungen in der Pflanze verkn{\"u}pft. 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. F{\"u}r diese Gene konnte eine Expressionsregulation durch bZIP1 und bZIP53 gezeigt werden. F{\"u}r die Bestimmung möglicher Heterodimerisierungspartner bedarf es noch weiterer Analysen. Dieses Model, das den abitoschen Stress abhängigen ABA-Signalweg mit dem ener- gieabhängigen SnRK1-Signaltransduktionsweg verkn{\"u}pft, zeigt die präzise Regulation von mindestens 4 Gen-Klassen, deren Expression durch die Kombination verschiedener bZIP-Transkriptionsfaktoren aktiviert wird.}, subject = {Salzstress}, language = {de} } @phdthesis{Kreisz2024, author = {Kreisz, Philipp}, title = {Group S1 bZIP transcription factors regulate sink tissue development by controlling carbon and nitrogen resource allocation in \(Arabidopsis\) \(thaliana\)}, doi = {10.25972/OPUS-32192}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-321925}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2024}, abstract = {The evolutionary success of higher plants is largely attributed to their tremendous developmental plasticity, which allows them to cope with adverse conditions. However, because these adaptations require investments of resources, they must be tightly regulated to avoid unfavourable trade-offs. Most of the resources required are macronutrients based on carbon and nitrogen. Limitations in the availability of these nutrients have major effects on gene expression, metabolism, and overall plant morphology. These changes are largely mediated by the highly conserved master kinase SNF1-RELATED PROTEIN KINASE1 (SnRK1), which represses growth and induces catabolic processes. Downstream of SnRK1, a hub of heterodimerising group C and S1 BASIC LEUCINE ZIPPER (bZIP) transcription factors has been identified. These bZIPs act as regulators of nutrient homeostasis and are highly expressed in strong sink tissues, such as flowers or the meristems that initiate lateral growth of both shoots and roots. However, their potential involvement in controlling developmental responses through their impact on resource allocation and usage has been largely neglected so far. Therefore, the objective of this work was to elucidate the impact of particularly S1 bZIPs on gene expression, metabolism, and plant development. Due to the high homology and suspected partial redundancy of S1 bZIPs, higher order loss-of-function mutants were generated using CRISPR-Cas9. The triple mutant bzip2/11/44 showed a variety of robust morphological changes but maintained an overall growth comparable to wildtype plants. In detail however, seedlings exhibited a strong reduction in primary root length. In addition, floral transition was delayed, and siliques and seeds were smaller, indicating a reduced supply of resources to the shoot and root apices. However, lateral root density and axillary shoot branching were increased, suggesting an increased ratio of lateral to apical growth in the mutant. The full group S1 knockout bzip1/2/11/44/53 showed similar phenotypes, albeit far more pronounced and accompanied by growth retardation. Metabolomic approaches revealed that these architectural changes were accompanied by reduced sugar levels in distal sink tissues such as flowers and roots. Sugar levels were also diminished in leaf apoplasts, indicating that long distance transport of sugars by apoplastic phloem loading was impaired in the mutants. In contrast, an increased sugar supply to the proximal axillary buds and elevated starch levels in the leaves were measured. In addition, free amino acid levels were increased in bzip2/11/44 and bzip1/2/11/44/53, especially for the important transport forms asparagine and glutamine. The increased C and N availability in the proximal tissues could be the cause of the increased axillary branching in the mutants. To identify bZIP target genes that might cause the observed shifts in metabolic status, RNAseq experiments were performed. Strikingly, clade III SUGARS WILL EVENTUALLY BE EXPORTED (SWEET) 8 genes were abundant among the differentially expressed genes. As SWEETs are crucial for sugar export to the apoplast and long-distance transport through the phloem, their reduced expression is likely to be the cause of the observed changes in sugar allocation. Similarly, the reduced expression of GLUTAMINE AMIDOTRANSFERASE 1_2.1 (GAT1_2.1), which exhibits glutaminase activity, could be an explanation for the abundance of glutamine in the mutants. Additional experiments (ATAC-seq, DAP� seq, PTA, q-RT-PCR) supported the direct induction of SWEETs and GAT1_2.1 by S1 bZIPs. To confirm the involvement of these target genes in the observed S1 bZIP mutant phenotypes, loss-of-function mutants were obtained, which showed moderately increased axillary branching. At the same time, the induced overexpression of bZIP11 in axillary meristems had the opposite effect. Collectively, a model is proposed for the function of S1 bZIPs in regulating sink tissue development. For efficient long-distance sugar transport, bZIPs may be required to induce the expression of clade III SWEETs. Thus, reduced SWEET expression in the S1 bZIP mutants would lead to a decrease in apoplastic sugar loading and a reduced supply to distal sinks such as shoot or root apices. The reduction in long� distance transport could lead to sugar accumulation in the leaves, which would then increasingly be transported via symplastic routes towards proximal sinks such as axillary branches and lateral roots or sequestered as starch. The reduced GAT1_2.1 levels lead to an abundance of glutamine, a major nitrogen transport form. The combined effect on C and N allocation results in increased nutrient availability in proximal tissues, promoting the formation of lateral plant organs. Alongside emerging evidence highlighting the power of bZIPs to steer nutrient allocation in other species, a novel but evolutionary conserved role for S1 bZIPs as regulators of developmental plasticity is proposed, while the generation of valuable data sets and novel genetic resources will help to gain a deeper understanding of the molecular mechanisms involved}, subject = {Molekularbiologie}, language = {en} }