4.7 Article

The impact of exercise on mitochondrial dynamics and the role of Drp1 in exercise performance and training adaptations in skeletal muscle

期刊

MOLECULAR METABOLISM
卷 21, 期 -, 页码 51-67

出版社

ELSEVIER
DOI: 10.1016/j.molmet.2018.11.012

关键词

Mitochondrial dynamics; Drp1; Exercise performance; Exercise training

资金

  1. UCLA Department of Medicine
  2. UCLA Iris Cantor Women's Health Center Research Foundation
  3. UCLA CTSI [ULTR000124]
  4. UCLA Claude D. Pepper Older Americans Independence Center
  5. National Institutes of Health [DK109724, P30DK063491]
  6. NURSA NDSP [U24DK097748]
  7. Kirschstein-NRSA predoctoral fellowship [F31DK108657]
  8. American College of Sports Medicine
  9. Dornsife College at the University of Southern California
  10. NIH T32 Neuroendocrinology, Sex Differences, and Reproduction Training Grant [5T32HD007228]
  11. Center for Duchenne Muscular Dystrophy Training Grant [T32AR065972]
  12. Molecular, Cellular, and Integrative Physiology Training Grant [T32GM065823]
  13. American College of Sports Medicine - NASA Space Physiology Research Grant
  14. UCLA Claude Pepper Older Americans Independence Center - National Institute on Aging [5P30AG028748]
  15. NIH/NCATS UCLA CTSI Grant [UL1TR000124]
  16. UCLA Center for Duchenne Muscular Dystrophy-NIH NIAMS Wellstone Center of Excellence Training Fellowship [U54 AR052646]
  17. Department of Veterans Affairs [I01BX000323]
  18. NIH [HL28481, HL30568]
  19. Institute of Basic Medical Sciences
  20. UiO
  21. Johan Throne-Holst Foundation for Nutrition Research
  22. Freia Medical Research Foundation
  23. Functional Genomics and Infrastructure programs of the Research Council of Norway
  24. Southeastern Regional Health Authorities
  25. EU [289511]
  26. Research Council of Norway
  27. South-eastern Regional Health Authorities, Norway

向作者/读者索取更多资源

Objective: Mitochondria are organelles primarily responsible for energy production, and recent evidence indicates that alterations in size, shape, location, and quantity occur in response to fluctuations in energy supply and demand. We tested the impact of acute and chronic exercise on mitochondrial dynamics signaling and determined the impact of the mitochondrial fission regulator Dynamin related protein (Drp) 1 on exercise performance and muscle adaptations to training. Methods: Wildtype and muscle-specific Drp1 heterozygote (mDrp1(+/-)) mice, as well as dysglycemic (DG) and healthy normoglycemic men (control) performed acute and chronic exercise. The Hybrid Mouse Diversity Panel, including 100 murine strains of recombinant inbred mice, was used to identify muscle Dnm1L (encodes Drp1)-gene relationships. Results: Endurance exercise impacted all aspects of the mitochondrial life cycle, i.e. fission-fusion, biogenesis, and mitophagy. Dnm1L gene expression and Drp1(Ser616) phosphorylation were markedly increased by acute exercise and declined to baseline during post-exercise recovery. Dnm1L expression was strongly associated with transcripts known to regulate mitochondrial metabolism and adaptations to exercise. Exercise increased the expression of DNM1L in skeletal muscle of healthy control and DG subjects, despite a 15% down arrow(P = 0.01) in muscle DNM1L expression in DG at baseline. To interrogate the role of Dnm1L further, we exercise trained male mDrp1(+/-) mice and found that Drp1 deficiency reduced muscle endurance and running performance, and altered muscle adaptations in response to exercise training. Conclusion: Our findings highlight the importance of mitochondrial dynamics, specifically Drp1 signaling, in the regulation of exercise performance and adaptations to endurance exercise training. (C) 2018 The Authors. Published by Elsevier GmbH.

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