4.6 Article

Ribonucleotide reductase M2B in the myofibers modulates stem cell fate in skeletal muscle

期刊

NPJ REGENERATIVE MEDICINE
卷 7, 期 1, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/s41536-022-00231-w

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资金

  1. Ministry of Science and Technology (MOST) of Taiwan
  2. TMU Research Center of Cancer Translational Medicine from The Featured Areas Research Center Program within the framework of the Higher Education Sprout Project by the Ministry of Education (MOE) in Taiwan
  3. Ministry of Health and Welfare (Health and welfare surcharge of tobacco products grant) [MOHW109-TDU-B-212-134014, MOHW109-TDU-B-212-134026, MOHW109-TDU-B-212-134020, MOHW111-TDU-B-221-014013]
  4. Ministry of Science and Technology [MOST-109-2321-B-038-003, MOST108-2638-E-007-001-MY2, MOST105-2320-B-038-022-MY3]
  5. Taipei Medical University [DP2-109-21121-01-O-02-04]

向作者/读者索取更多资源

The balance and fate of skeletal muscle stem cells (MuSCs) is tightly regulated by their intrinsic and extrinsic properties. Ribonucleotide reductase M2B (Rrm2b) plays a critical role in modulating MuSC fate by modifying the microenvironment in muscle fibers. Lack of Rrm2b leads to muscle weakness and impaired muscle fiber repair.
The balance among quiescence, differentiation, and self-renewal of skeletal muscle stem cells (MuSCs) is tightly regulated by their intrinsic and extrinsic properties from the niche. How the niche controls MuSC fate remains unclear. Ribonucleotide reductase M2B (Rrm2b) modulates MuSC quiescence/differentiation in muscle in response to injury. Rrm2b knockout in myofibers, but not in MuSCs, led to weakness of muscles, such as a loss of muscle mass and strength. After muscle injury, damaged myofibers were more efficiently repaired in the Rrm2b myofiber-specific knockout mice than the control mice, but these myofibers were thinner and showed weak functioning. Rrm2b-deleted myofibers released several myokines, which trigger MuSCs to differentiate but not re-enter the quiescent stage to replenish the stem cell pool. Overall, Rrm2b in the myofibers plays a critical role in modulating the MuSC fate by modifying the microenvironment, and it may lead to a possible strategy to treat muscle disorders.

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