The regenerating skeletal muscle niche guides muscle stem cell self-renewal
Cutler, A. A.; Pawlikowski, B.; Wheeler, J. R.; Dalla Betta, N.; Antwine, T.; O'Rourke, R.; Jones, K.; Olwin, B. B.
Show abstract
Skeletal muscle stem cells (MuSCs) are essential for muscle regeneration and maintenance. While MuSCs typically are quiescent and reside in an asymmetric niche between the basal lamina and myofiber membrane: to repair or maintain muscle, MuSCs activate, proliferate and differentiate to repair injured tissue, and self-renew to replenish MuSCs. Little is known about the timing of MuSC self-renewal during muscle regeneration and the cellular processes that direct MuSC self-renewal fate decisions. Using DNA-based lineage tracing, we find that during muscle regeneration most MuSCs self-renew from 5-7 days post-injury, following fusion of myogenic cells to regenerate myofibers. Single cell sequencing of the myogenic cells in regenerating muscle reveals that non-cell autonomous signaling networks regulate MuSC self-renewal allowing identification of asymmetrically distributed proteins in self-renewing MuSCs. Cell transplantation experiments verified that the regenerating environment signals MuSC self-renewal. Our results define the critical window for MuSC self-renewal emphasizing the temporal contribution of the regenerative muscle environment on MuSC fate, establishing a new paradigm for restoring the MuSC pool during muscle regeneration.
Matching journals
The top 5 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- Heterogeneity of satellite cells implicates DELTA1/ NOTCH2 signaling in self-renewal 99%
- Single-cell analysis of the muscle stem cell hierarchy identifies heterotypic communication signals involved in skeletal muscle regeneration 98%
- Fibroblast diversification is an embryonic process dependent on muscle contraction 97%
Similar papers in this journal
- A Dual Color Pax7 and Myf5 In Vivo Reporter to Investigate Muscle Stem Cell Heterogeneity in Regeneration and Aging 97%
- PINK1 Deficiency Alters Muscle Stem Cell Fate Decision And Muscle Regenerative Capacity. 95%
- A Latent Activated Olfactory Stem Cell State Revealed by Single Cell Transcriptomic and Epigenomic Profiling 94%
Similar papers in this journal
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.