4.5 Article

Muscle choline kinase beta defect causes mitochondrial dysfunction and increased mitophagy

期刊

HUMAN MOLECULAR GENETICS
卷 20, 期 19, 页码 3841-3851

出版社

OXFORD UNIV PRESS
DOI: 10.1093/hmg/ddr305

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资金

  1. Research on Psychiatric and Neurological Diseases and Mental Health of Health and Labour Sciences Research Grants
  2. Research on Intractable Diseases of Health and Labor Sciences Research Grants
  3. Ministry of Health, Labour and Welfare [20B-12, 20B-13]
  4. NCNP [23-4, 23-5]
  5. KAKENHI [20390250, 22791019]
  6. Research on Publicly Essential Drugs and Medical Devices of Health and Labor Sciences Research Grants
  7. National Institute of Biomedical Innovation (NIBIO)
  8. Japan Foundation for Neuroscience and Mental Health
  9. National Institutes of Health [AR054170]
  10. Grants-in-Aid for Scientific Research [22791019, 20390250, 21591104] Funding Source: KAKEN

向作者/读者索取更多资源

Choline kinase is the first step enzyme for phosphatidylcholine (PC) de novo biosynthesis. Loss of choline kinase activity in muscle causes rostrocaudal muscular dystrophy (rmd) in mouse and congenital muscular dystrophy in human, characterized by distinct mitochondrial morphological abnormalities. We performed biochemical and pathological analyses on skeletal muscle mitochondria from rmd mice. No mitochondria were found in the center of muscle fibers, while those located at the periphery of the fibers were significantly enlarged. Muscle mitochondria in rmd mice exhibited significantly decreased PC levels, impaired respiratory chain enzyme activities, decreased mitochondrial ATP synthesis, decreased coenzyme Q and increased superoxide production. Electron microscopy showed the selective autophagic elimination of mitochondria in rmd muscle. Molecular markers of mitophagy, including Parkin, PINK1, LC3, polyubiquitin and p62, were localized to mitochondria of rmd muscle. Quantitative analysis shows that the number of mitochondria in muscle fibers and mitochondrial DNA copy number were decreased. We demonstrated that the genetic defect in choline kinase in muscle results in mitochondrial dysfunction and subsequent mitochondrial loss through enhanced activation of mitophagy. These findings provide a first evidence for a pathomechanistic link between de novo PC biosynthesis and mitochondrial abnormality.

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