The interplay of post‐translational protein modifications in Arabidopsis leaves during photosynthesis induction

Author:

Giese Jonas1,Eirich Jürgen1ORCID,Walther Dirk2,Zhang Youjun23ORCID,Lassowskat Ines1,Fernie Alisdair R.23ORCID,Elsässer Marlene1,Maurino Veronica G.4ORCID,Schwarzländer Markus1ORCID,Finkemeier Iris1ORCID

Affiliation:

1. Institute of Plant Biology and Biotechnology (IBBP) University of Münster Schlossplatz 7‐8 Münster D‐48149 Germany

2. Max‐Planck‐Institute of Molecular Plant Physiology (MPIMP) Am Mühlenberg 1 Potsdam D‐14476 Germany

3. Center of Plant Systems Biology and Biotechnology Plovdiv 4000 Bulgaria

4. Institute of Cellular and Molecular Botany (IZMB) Rheinische Friedrich‐Wilhelms‐Universität Bonn Kirschallee 1 Bonn D‐53115 Germany

Abstract

SUMMARYDiurnal dark to light transition causes profound physiological changes in plant metabolism. These changes require distinct modes of regulation as a unique feature of photosynthetic lifestyle. The activities of several key metabolic enzymes are regulated by light‐dependent post‐translational modifications (PTM) and have been studied at depth at the level of individual proteins. In contrast, a global picture of the light‐dependent PTMome dynamics is lacking, leaving the response of a large proportion of cellular function undefined. Here, we investigated the light‐dependent metabolome and proteome changes in Arabidopsis rosettes in a time resolved manner to dissect their kinetic interplay, focusing on phosphorylation, lysine acetylation, and cysteine‐based redox switches. Of over 24 000 PTM sites that were detected, more than 1700 were changed during the transition from dark to light. While the first changes, as measured 5 min after onset of illumination, occurred mainly in the chloroplasts, PTM changes at proteins in other compartments coincided with the full activation of the Calvin–Benson cycle and the synthesis of sugars at later timepoints. Our data reveal connections between metabolism and PTM‐based regulation throughout the cell. The comprehensive multiome profiling analysis provides unique insight into the extent by which photosynthesis reprograms global cell function and adds a powerful resource for the dissection of diverse cellular processes in the context of photosynthetic function.

Funder

Deutsche Forschungsgemeinschaft

Max-Planck-Gesellschaft

Publisher

Wiley

Subject

Cell Biology,Plant Science,Genetics

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