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叶绿体蛋白的另一个作用——在糖饥饿时为能量生产提供氨基酸储备。

An additional role for chloroplast proteins-an amino acid reservoir for energy production during sugar starvation.

机构信息

a Frontier Research Institute for Interdisciplinary Sciences , Tohoku University , Sendai , Japan.

b Department of Molecular and Chemical Life Sciences, Graduate School of Life Sciences , Tohoku University , Sendai , Japan.

出版信息

Plant Signal Behav. 2019;14(1):1552057. doi: 10.1080/15592324.2018.1552057. Epub 2018 Dec 3.

DOI:10.1080/15592324.2018.1552057
PMID:30507341
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6351091/
Abstract

Autophagy is an evolutionarily conserved system that degrades intracellular components including proteins and organelles, and is important in the adaptive response to starvation in various eukaryotic organisms. Plant chloroplasts convert light energy into chemical energy and assimilate atmospheric carbon dioxide (CO) for carbohydrate production through photosynthesis reactions. We previously described an autophagy process for chloroplast degradation, during which a portion of chloroplasts are mobilized into the vacuole via autophagic vesicles termed Rubisco-containing bodies. Our recent study demonstrated that the activation of autophagy in photoassimilate-limited leaves is required for the production of free amino acids (AAs) as an alternative energy source. The catabolism of free branched-chain amino acids (BCAAs) is particularly important for survival under starvation conditions. These recent findings suggest an additional role for chloroplasts as a reservoir of AA when photosynthetic energy production is limited.

摘要

自噬是一种进化上保守的系统,可降解包括蛋白质和细胞器在内的细胞内成分,在各种真核生物对饥饿的适应性反应中非常重要。植物叶绿体将光能转化为化学能,并通过光合作用反应同化大气中的二氧化碳 (CO) 来生产碳水化合物。我们之前描述了一个叶绿体降解的自噬过程,在此过程中,一部分叶绿体通过自噬小体(称为含 Rubisco 体)被动员到液泡中。我们最近的研究表明,在光同化受限的叶片中,自噬的激活是产生游离氨基酸 (AA) 作为替代能源所必需的。游离支链氨基酸 (BCAA) 的分解代谢对饥饿条件下的生存尤为重要。这些最新发现表明,当光合作用产生的能量受到限制时,叶绿体作为 AA 储存库发挥了额外的作用。

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Unveiling the Molecular Mechanisms of Plant Autophagy-From Autophagosomes to Vacuoles in Plants.揭示植物自噬的分子机制——从植物自噬体到液泡。
Plant Cell Physiol. 2018 Jul 1;59(7):1337-1344. doi: 10.1093/pcp/pcy112.
3
Regulation of Chlorophagy during Photoinhibition and Senescence: Lessons from Mitophagy.光抑制和衰老过程中氯自噬的调控:自噬的启示。
Plant Cell Physiol. 2018 Jun 1;59(6):1135-1143. doi: 10.1093/pcp/pcy096.
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Selective Elimination of Membrane-Damaged Chloroplasts via Microautophagy.通过微自噬选择性消除受损的叶绿体。
Plant Physiol. 2018 Jul;177(3):1007-1026. doi: 10.1104/pp.18.00444. Epub 2018 May 10.
5
Proteasome storage granules protect proteasomes from autophagic degradation upon carbon starvation.蛋白酶体储存颗粒可防止蛋白酶体在碳饥饿时发生自噬降解。
Elife. 2018 Apr 6;7:e34532. doi: 10.7554/eLife.34532.
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Chloroplast Protein Turnover: The Influence of Extraplastidic Processes, Including Autophagy.叶绿体蛋白周转:包括自噬在内的质外体过程的影响。
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Darkened Leaves Use Different Metabolic Strategies for Senescence and Survival.叶片衰老与存活的代谢策略不同。
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