The interplay between autophagy and chloroplast vesiculation pathways under dark‐induced senescence

Author:

Barros Jessica A. S.1,Cavalcanti João Henrique F.2,Pimentel Karla G.1,Magen Sahar3,Soroka Yoram3,Weiss Shahar3,Medeiros David B.4,Nunes‐Nesi Adriano1ORCID,Fernie Alisdair R.4,Avin‐Wittenberg Tamar3ORCID,Araújo Wagner L.1ORCID

Affiliation:

1. Departamento de Biologia Vegetal Universidade Federal de Viçosa Viçosa Minas Gerais Brazil

2. Instituto de Educação, Agricultura e Ambiente Universidade Federal do Amazonas Humaitá Amazonas Brazil

3. Department of Plant and Environmental Sciences, The Alexander Silberman Institute of Life Sciences The Hebrew University of Jerusalem, Givat Ram Jerusalem Israel

4. Max Planck Institute of Molecular Plant Physiology Potsdam Germany

Abstract

AbstractIn cellular circumstances where carbohydrates are scarce, plants can use alternative substrates for cellular energetic maintenance. In plants, the main protein reserve is present in the chloroplast, which contains most of the total leaf proteins and represents a rich source of nitrogen and amino acids. Autophagy plays a key role in chloroplast breakdown, a well‐recognised symptom of both natural and stress‐induced plant senescence. Remarkably, an autophagic‐independent route of chloroplast degradation associated with chloroplast vesiculation (CV) gene was previously demonstrated. During extended darkness, CV is highly induced in the absence of autophagy, contributing to the early senescence phenotype of atg mutants. To further investigate the role of CV under dark‐induced senescence conditions, mutants with low expression of CV (amircv) and double mutants amircv1xatg5 were characterised. Following darkness treatment, no aberrant phenotypes were observed in amircv single mutants; however, amircv1xatg5 double mutants displayed early senescence and altered dismantling of chloroplast and membrane structures under these conditions. Metabolic characterisation revealed that the functional lack of both CV and autophagy leads to higher impairment of amino acid release and differential organic acid accumulation during starvation conditions. The data obtained are discussed in the context of the role of CV and autophagy, both in terms of cellular metabolism and the regulation of chloroplast degradation.

Funder

Fundação de Amparo à Pesquisa do Estado de Minas Gerais

Conselho Nacional de Desenvolvimento Científico e Tecnológico

Publisher

Wiley

Subject

Plant Science,Physiology

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