4.7 Article

Pannexin 1 Regulates Skeletal Muscle Regeneration by Promoting Bleb-Based Myoblast Migration and Fusion Through a Novel Lipid Based Signaling Mechanism

期刊

出版社

FRONTIERS MEDIA SA
DOI: 10.3389/fcell.2021.736813

关键词

Panx1; lipid signaling; myoblast migration; pannexins; blebbing; myoblast fusion

资金

  1. French Muscular Dystrophy Association [13899, 15654]
  2. National Eye Institute (NIH NEI) [1R01EY026202, R01EY028983]
  3. NIH NIDCR [1R01DE031044]
  4. BBSRC [BB/J016454/1]
  5. NIH NEI [EY032261]
  6. Department of Defense [VR200079, DAMB W81XWH-13-1-0048]
  7. Russian Science Foundation [N17-15-01433]
  8. RPB grants
  9. National Institute of Arthritis and Musculoskeletal and Skin Disease (NIH NIAMS) [R21 AR075205]
  10. Freiburg Institute for Advanced Studies (FRIAS)
  11. St Johns College Oxford
  12. Australian Research Council Future Fellowship
  13. Australian Research Council (ARC) [DP210103065]
  14. [P30-EY014801]
  15. BBSRC [BB/J016454/1] Funding Source: UKRI

向作者/读者索取更多资源

Pannexin1 plays a crucial role in skeletal muscle development and regeneration by coordinating myoblast activities. Lack of Panx1 results in impaired muscle regeneration after injury, highlighting the importance of lipid-based signaling pathways in regulating myoblast migration and fusion for tissue repair. These findings provide new insights into the mechanisms of skeletal muscle regeneration and the potential therapeutic targets for muscle injuries.
Adult skeletal muscle has robust regenerative capabilities due to the presence of a resident stem cell population called satellite cells. Muscle injury leads to these normally quiescent cells becoming molecularly and metabolically activated and embarking on a program of proliferation, migration, differentiation, and fusion culminating in the repair of damaged tissue. These processes are highly coordinated by paracrine signaling events that drive cytoskeletal rearrangement and cell-cell communication. Pannexins are a family of transmembrane channel proteins that mediate paracrine signaling by ATP release. It is known that Pannexin1 (Panx1) is expressed in skeletal muscle, however, the role of Panx1 during skeletal muscle development and regeneration remains poorly understood. Here we show that Panx1 is expressed on the surface of myoblasts and its expression is rapidly increased upon induction of differentiation and that Panx1(-/-) mice exhibit impaired muscle regeneration after injury. Panx1(-/-) myoblasts activate the myogenic differentiation program normally, but display marked deficits in migration and fusion. Mechanistically, we show that Panx1 activates P2 class purinergic receptors, which in turn mediate a lipid signaling cascade in myoblasts. This signaling induces bleb-driven amoeboid movement that in turn supports myoblast migration and fusion. Finally, we show that Panx1 is involved in the regulation of cell-matrix interaction through the induction of ADAMTS (Disintegrin-like and Metalloprotease domain with Thrombospondin-type 5) proteins that help remodel the extracellular matrix. These studies reveal a novel role for lipid-based signaling pathways activated by Panx1 in the coordination of myoblast activities essential for skeletal muscle regeneration.

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