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Kreisz, P.

Publications and source records attributed to Kreisz, P..

3 recordsLinked to original sources

AFC kinases function as thermosensors that regulate warm temperature-responsive growth in Arabidopsis

Plants respond to elevated temperatures with enhanced elongation growth that depends on rapid transcriptional, post-transcriptional, and post-translational reprogramming. However, it is unclear how temperature information integrates with the splicing machinery to establish warm temperature-dependent splicing patterns. In animals, CDC2-LIKE KINASES (CLKs) function as body temperature sensors that control temperature-dependent splicing via phosphorylation of serine/arginine-rich (SR) proteins. Here we demonstrate that the CLK-homologous ARABIDOPSIS FUS3-COMPLEMENTING (AFC) kinases likewise regulate post-transcriptional RNA processing to control warm temperature-dependent growth in Arabidopsis. The contrasting temperature-activity profiles of the three AFCs depend on specific structural elements, including a conserved activation segment within the kinase domain. Combining protein structure prediction with site-directed mutagenesis, we provide insights into structural features that determine the different temperature-activity profiles of the three AFC paralogs. Analyses of afc mutant plants demonstrate their role in establishing temperature-dependent splicing patterns and thermomorphogenic hypocotyl elongation. Finally, our data indicate SR34 and SR34a as phosphorylation targets mediating temperature-dependent hypocotyl elongation downstream of AFCs. In conclusion, our study provides evidence that temperature-controlled AFC activity is evolutionarily conserved between plants and animals and implicates AFCs in the control of thermomorphogenesis.

plant biology↗

S1 basic leucine zipper transcription factors shape plant architecture by controlling C/N partitioning to apical and lateral organs

Plants exhibit an immense plasticity in their architecture. While the impact of hormonal regulation is well-characterised, the importance of sugar-signalling has just recently emerged. Here, we addressed which sugar-signalling components mediate the trade-off between growth of apical versus lateral meristems and how they control organ sink-strength. Thereby, we unravelled a novel developmental function of the sugar-controlled S1 basic-leucine-zipper (S1-bZIP) transcription factors in establishing global source-sink interactions. Applying comprehensive molecular, analytical, and genetic approaches, we demonstrate that S1-bZIPs operate in a redundant manner to control tissue-specific expression of defined SWEET sugar-transporters and the GAT1_2.1 glutaminase. By these means, S1-bZIPs control carbohydrate (C)-channelling from source leaves to apical shoot and root organs and tune systemic organic nitrogen (N)-supply to restrict lateral organ formation by C/N depletion. Knowledge of the underlying mechanisms controlling plant C/N partitioning is of pivotal importance for breeding strategies to generate plants with desired architectural and nutritional characteristics.

plant biology↗

The transcription factor bZIP11 acts antagonistically with trehalose 6-phosphate to inhibit shoot branching

The ontogenetic regulation of shoot branching allows plants to adjust their architecture in accordance with the environment. This process is due to the regulation of axillary bud outgrowth into branches, which can be induced by increasing sugar availability to the buds through decapitation of the shoot tip. Different sugar signalling components have been identified in the induction of shoot branching. However, the molecular components that maintain bud dormancy in response to sugar starvation remain largely unknown. Here, we show at the genetic level that basic leucine zipper 11 (bZIP11), a transcription factor that plays important roles in response to sugar starvation in plants, inhibits shoot branching in Arabidopsis thaliana. Physiology experiments demonstrated that bZIP11 protein levels are decreased by decapitation. Molecular and genetic evidence suggests that bZIP11 acts in a negative feedback loop with trehalose 6-phosphate (Tre6P), a sugar signal that promotes shoot branching. Our data also suggest that the central energy sensor SUCROSE NON-FERMENTING 1 RELATED KINASE1 (SnRK1), alleviates the inhibitory effect of Tre6P on bZIP11 protein accumulation and inhibits shoot branching. Altogether, these data provide a working model that involves bZIP11, Tre6P and SnRK1 in the regulation of shoot branching.

plant biology↗