Mitophagy in plants: Emerging regulators of mitochondrial targeting for selective autophagy.

IF 1.5 4区 工程技术 Q3 MICROSCOPY
Patrick J Duckney, Pengwei Wang, Patrick J Hussey
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引用次数: 0

Abstract

The degradation and turnover of mitochondria is fundamental to Eukaryotes and is a key homeostatic mechanism for maintaining functional mitochondrial populations. Autophagy is an important pathway by which mitochondria are degraded, involving their sequestration into membrane-bound autophagosomes and targeting to lytic endosomal compartments (the lysosome in animals, the vacuole in plants and yeast). Selective targeting of mitochondria for autophagy, also known as mitophagy, distinguishes mitochondria from other cell components for degradation and is necessary for the regulation of mitochondria-specific cell processes. In mammals and yeast, mitophagy has been well characterised and is regulated by numerous pathways with diverse and important functions in the regulation of cell homeostasis, metabolism and responses to specific stresses. In contrast, we are only just beginning to understand the importance and functions of mitophagy in plants, chiefly as the proteins that target mitochondria for autophagy in plants are only recently emerging. Here, we discuss the current progress of our understanding of mitophagy in plants, the importance of mitophagy for plant life and the regulatory autophagy proteins involved in mitochondrial degradation. In particular, we will discuss the recent emergence of mitophagy receptor proteins that selectively target mitochondria for autophagy, and discuss the missing links in our knowledge of mitophagy-regulatory proteins in plants compared to animals and yeast.

植物的线粒体吞噬:线粒体靶向选择性自噬的新调节器
线粒体的降解和更替是真核生物的基本特征,也是维持线粒体功能的一种关键的平衡机制。自噬是线粒体降解的重要途径,包括将线粒体封存到与膜结合的自噬体中,并将其靶向溶解性内体区(动物的溶酶体、植物和酵母的液泡)。线粒体选择性地靶向自噬,也称为有丝分裂,可将线粒体与其他细胞成分区分开来进行降解,是调节线粒体特异性细胞过程所必需的。在哺乳动物和酵母中,线粒体自噬的特性已经得到了很好的描述,并且受到许多途径的调控,这些途径在调控细胞稳态、新陈代谢和对特定压力的反应方面具有多种多样的重要功能。相比之下,我们才刚刚开始了解植物有丝分裂的重要性和功能,这主要是因为植物中以线粒体为目标进行自噬的蛋白质最近才出现。在这里,我们将讨论目前对植物有丝分裂的认识进展、有丝分裂对植物生命的重要性以及参与线粒体降解的自噬调控蛋白。特别是,我们将讨论最近出现的选择性针对线粒体进行自噬的有丝分裂受体蛋白,并讨论与动物和酵母相比,我们对植物中有丝分裂调控蛋白的了解还存在哪些缺失。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of microscopy
Journal of microscopy 工程技术-显微镜技术
CiteScore
4.30
自引率
5.00%
发文量
83
审稿时长
1 months
期刊介绍: The Journal of Microscopy is the oldest journal dedicated to the science of microscopy and the only peer-reviewed publication of the Royal Microscopical Society. It publishes papers that report on the very latest developments in microscopy such as advances in microscopy techniques or novel areas of application. The Journal does not seek to publish routine applications of microscopy or specimen preparation even though the submission may otherwise have a high scientific merit. The scope covers research in the physical and biological sciences and covers imaging methods using light, electrons, X-rays and other radiations as well as atomic force and near field techniques. Interdisciplinary research is welcome. Papers pertaining to microscopy are also welcomed on optical theory, spectroscopy, novel specimen preparation and manipulation methods and image recording, processing and analysis including dynamic analysis of living specimens. Publication types include full papers, hot topic fast tracked communications and review articles. Authors considering submitting a review article should contact the editorial office first.
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