Defects in autophagy lead to selective in vivo changes in turnover of cytosolic and organelle proteins in Arabidopsis

Author:

Li Lei12ORCID,Lee Chun Pong2ORCID,Ding Xinxin3ORCID,Qin Yu1ORCID,Wijerathna-Yapa Akila2ORCID,Broda Martyna2ORCID,Otegui Marisa S3ORCID,Millar A Harvey2ORCID

Affiliation:

1. Frontiers Science Center for Cell Responses, Department of Plant Biology and Ecology, College of Life Sciences, Nankai University , Tianjin 300071, China

2. ARC Centre of Excellence in Plant Energy Biology, School of Molecular Science, The University of Western Australia , Crawley, WA 6009, Australia

3. Department of Botany and Center for Quantitative Cell Imaging, University of Wisconsin-Madison , Madison, Wisconsin 53706, USA

Abstract

Abstract Identification of autophagic protein cargo in plants in autophagy-related genes (ATG) mutants is complicated by changes in protein synthesis and protein degradation. To detect autophagic cargo, we measured protein degradation rate in shoots and roots of Arabidopsis (Arabidopsis thaliana) atg5 and atg11 mutants. These data show that less than a quarter of proteins changing in abundance are probable cargo and revealed roles of ATG11 and ATG5 in degradation of specific glycolytic enzymes and of other cytosol, chloroplast, and ER-resident proteins, and a specialized role for ATG11 in degradation of proteins from mitochondria and chloroplasts. Protein localization in transformed protoplasts and degradation assays in the presence of inhibitors confirm a role for autophagy in degrading glycolytic enzymes. Autophagy induction by phosphate (Pi) limitation changed metabolic profiles and the protein synthesis and degradation rates of atg5 and atg11 plants. A general decrease in the abundance of amino acids and increase in secondary metabolites in autophagy mutants was consistent with altered catabolism and changes in energy conversion caused by reduced degradation rate of specific proteins. Combining measures of changes in protein abundance and degradation rates, we also identify ATG11 and ATG5-associated protein cargo of low Pi-induced autophagy in chloroplasts and ER-resident proteins involved in secondary metabolism.

Funder

Australian Research Council

National Natural Science Foundation of China

Tianjin Natural Science Foundation

Open Research Fund of State Key Laboratory of Hybrid Rice

Wuhan University

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Plant Science

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