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Mitophagy and Quality Control Mechanisms in Mitochondrial Maintenance

期刊

CURRENT BIOLOGY
卷 28, 期 4, 页码 R170-R185

出版社

CELL PRESS
DOI: 10.1016/j.cub.2018.01.004

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资金

  1. NIH National Institute of Neurological Disorders and Stroke Intramural Research Program
  2. Canadian Institutes of Health Research
  3. University of Bordeaux
  4. International Doctoral Program of the Idex of Bordeaux
  5. Agence Nationale de la Recherche [ANR-10-IDEX-03-02]

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The maintenance of a healthy and functional mitochondrial network is critical during development as well as throughout life in the response to physiological adaptations and stress conditions. Owing to their role in energy production, mitochondria are exposed to high levels of reactive oxygen species, making them particularly vulnerable to mitochondrial DNA mutations and protein misfolding. Given that mitochondria are formed from proteins encoded by both nuclear and mitochondrial genomes, an additional layer of complexity is inherent in the coordination of protein synthesis and the mitochondrial import of nuclear-encoded proteins. For these reasons, mitochondria have evolved multiple systems of quality control to ensure that the requisite number of functional mitochondria are present to meet the demands of the cell. These pathways work to eliminate damaged mitochondrial proteins or parts of the mitochondrial network by mitophagy and renew components by adding protein and lipids through biogenesis, collectively resulting in mitochondrial turnover. Mitochondrial quality control mechanisms are multi-tiered, operating at the protein, organelle and cell levels. Herein, we discuss mitophagy in different physiological contexts and then relate it to other quality control pathways, including the unfolded protein response, shedding of vesicles, proteolysis, and degradation by the ubiquitin-proteasome system. Understanding how these pathways contribute to the maintenance of mitochondrial homeostasis could provide insights into the development of targeted treatments when these systems fail in disease.

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