DOMAIN OF UNKNOWN FUNCTION581-9 negatively regulates SnRK1 kinase activity

Author:

Bortlik Jennifer1ORCID,Lühle Jost1ORCID,Alseekh Saleh23ORCID,Weiste Christoph4ORCID,Fernie Alisdair R23ORCID,Dröge-Laser Wolfgang3ORCID,Börnke Frederik15ORCID

Affiliation:

1. Plant Metabolism Group, Department of Plant Adaptation, Leibniz-Institute of Vegetable and Ornamental Crops (IGZ) , Großbeeren 14979 , Germany

2. Department Root Biology and Symbiosis, Max-Planck-Institute of Molecular Plant Physiology , Am Mühlenberg 1, Potsdam-Golm 14476 , Germany

3. Center for Plant Systems Biology and Biotechnology , Plovdiv 4000 , Bulgaria

4. Department of Pharmaceutical Biology, Julius-von-Sachs-Institut, Biozentrum, Julius-Maximilians-Universität Würzburg , Würzburg 97082 , Germany

5. Institute of Biochemistry and Biology, University of Potsdam , Potsdam 14476 , Germany

Abstract

Abstract In plants, sucrose nonfermenting 1 (SNF1)-related protein kinase 1 (SnRK1) is a key energy sensor that orchestrates large-scale transcriptional reprograming to maintain cellular homeostasis under energy deficit. SnRK1 activity is under tight negative control, although the exact mechanisms leading to its activation are not well understood. We show that the Arabidopsis (Arabidopsis thaliana) DOMAIN OF UNKNOWN FUNCTION (DUF581) protein DUF581-9/FCS-like zinc finger 3 binds to the catalytic SnRK1.1 α subunit (KIN10) to inhibit its activation by geminivirus rep-interacting kinase (GRIK)–dependent T-loop phosphorylation. Overexpression of DUF581-9 in Arabidopsis dampens SnRK1 signaling and interferes with adaptation to dark-induced starvation. The presence of DUF581-9 significantly reduced SnRK1 activity in protoplasts and in vitro. This was accompanied by a reduction in T175 T-loop phosphorylation and also diminished KIN10 auto-phosphorylation. Furthermore, DUF581-9 reduced binding of the upstream activating kinase GRIK2 to KIN10, explaining the reduced KIN10 T-loop phosphorylation. Ectopically expressed DUF581-9 protein was rapidly turned over by the proteasome when Arabidopsis plants were subjected to starvation treatment, likely releasing its inhibitory activity on the SnRK1 complex. Taken together, our results support a model in which DUF581-9 negatively regulates SnRK1 activity under energy sufficient conditions. Turnover of the protein provides a rapid way for SnRK1 activation under energy deficit without the need of de novo protein synthesis.

Funder

Union’s Horizon 2020 Research and Innovation Program

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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