Scinovex
articleTop 1% cited

Satellite cells, connective tissue fibroblasts and their interactions are crucial for muscle regeneration

Development · 2011 · Vol. 138(17) · pp. 3625–3637
Malea M. MurphyJennifer A. LawsonSam J. MathewDavid A. HutchesonGabrielle Kardon

Abstract

Muscle regeneration requires the coordinated interaction of multiple cell types. Satellite cells have been implicated as the primary stem cell responsible for regenerating muscle, yet the necessity of these cells for regeneration has not been tested. Connective tissue fibroblasts also are likely to play a role in regeneration, as connective tissue fibrosis is a hallmark of regenerating muscle. However, the lack of molecular markers for these fibroblasts has precluded an investigation of their role. Using Tcf4, a newly identified fibroblast marker, and Pax7, a satellite cell marker, we found that after injury satellite cells and fibroblasts rapidly proliferate in close proximity to one another. To test the role of satellite cells and fibroblasts in muscle regeneration in vivo, we created Pax7(CreERT2) and Tcf4(CreERT2) mice and crossed these to R26R(DTA) mice to genetically ablate satellite cells and fibroblasts. Ablation of satellite cells resulted in a complete loss of regenerated muscle, as well as misregulation of fibroblasts and a dramatic increase in connective tissue. Ablation of fibroblasts altered the dynamics of satellite cells, leading to premature satellite cell differentiation, depletion of the early pool of satellite cells, and smaller regenerated myofibers. Thus, we provide direct, genetic evidence that satellite cells are required for muscle regeneration and also identify resident fibroblasts as a novel and vital component of the niche regulating satellite cell expansion during regeneration. Furthermore, we demonstrate that reciprocal interactions between fibroblasts and satellite cells contribute significantly to efficient, effective muscle regeneration.

Muscle Physiology and DisordersTissue Engineering and Regenerative MedicineMesenchymal stem cell researchBiologyRegeneration (biology)Connective tissueSatelliteCell biologyFibroblastStem cellExtracellular matrixMyofibroblastMyocyte

MeSH terms

Transcription Factor 4AnimalsCell DifferentiationCells, CulturedConnective TissueFibroblastsFlow CytometryFluorescent Antibody TechniqueMice, TransgenicPolymerase Chain ReactionMuscle DevelopmentSatellite Cells, Skeletal MuscleMicePAX7 Transcription FactorBasic Helix-Loop-Helix Leucine Zipper Transcription Factors

Funding

  • University of Utah
  • National Institutes of Health
Citations
1,221
FWCI
23.95
field-weighted impact
References
72
Percentile
100%
vs. same field & year
Citations per year
Cited by
References
Transforming growth factor-β and fibrosis
World Journal of Gastroenterology · 2007 · 497 citations
Generalized lacZ expression with the ROSA26 Cre reporter strain
Nature Genetics · 1999 · 4,871 citations
Myofibroblasts and mechano-regulation of connective tissue remodelling
Nature Reviews Molecular Cell Biology · 2002 · 4,182 citations
Regulation of Cre Recombinase Activity by Mutated Estrogen Receptor Ligand-Binding Domains
Biochemical and Biophysical Research Communications · 1997 · 995 citations
SATELLITE CELL OF SKELETAL MUSCLE FIBERS
The Journal of Cell Biology · 1961 · 3,612 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.