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Isolation and Culture of Individual Myofibers and their Satellite Cells from Adult Skeletal Muscle
Published on: March 22, 2013
MyoD(-/-) satellite cells in single-fiber culture are differentiation defective and MRF4 deficient
D D Cornelison1, B B Olwin, M A Rudnicki
1Biology Division 156-29, California Institute of Technology, Pasadena 91125, USA.
Abstract:
MyoD-deficient mice are without obvious deleterious muscle phenotype during embryogenesis and fetal development, and adults in the laboratory have grossly normal skeletal muscle and life span. However, a previous study showed that in the context of muscle degeneration on a mdx (dystrophin null) genetic background, animals lacking MyoD have a greatly intensified disease phenotype leading to lethality not otherwise seen in mdx mice. Here we have examined MyoD(-/-) adult muscle fibers and their associated satellite cells in single myofiber cultures and describe major phenotypic differences found at the tissue, cellular, and molecular levels. The steady-state number of satellite cells on freshly isolated MyoD(-/-) fibers was elevated and abnormal branched fiber morphologies were observed, the latter suggesting chronic muscle regeneration in vivo. Single-cell RNA coexpression analyses were performed for c-met, m-cadherin, and the four myogenic regulatory factors (MRFs.) Most mutant satellite cells entered the cell cycle and upregulated expression of myf5, both characteristic early steps in satellite cell maturation. However, they later failed to normally upregulate MRF4, displayed a major deficit in m-cadherin expression, and showed a significant diminution in myogenin-positive status compared with wildtype. MyoD(-/-) satellite cells formed unusual aggregate structures, failed to fuse efficiently, and showed greater than 90% reduction in differentiation efficiency relative to wildtype. A further survey of RNAs encoding regulators of growth and differentiation, cell cycle progression, and cell signaling revealed similar or identical expression profiles for most genes as well as several noteworthy differences. Among these, GDF8 and Msx1 were identified as potentially important regulators of the quiescent state whose expression profile differs between mutant and wildtype. Considered together, these data suggest that activated MyoD(-/-) satellite cells assume a phenotype that resembles in some ways a developmentally "stalled" cell compared to wildtype. However, the MyoD(-/-) cells are not merely developmentally immature, as they also display novel molecular and cellular characteristics that differ from any observed in wild-type muscle precursor counterparts of any stage.
Insights
Mice lacking MyoD show normal muscle development but exhibit severe issues when combined with muscular dystrophy. MyoD-deficient satellite cells have impaired differentiation and unique molecular profiles, suggesting a stalled developmental state.
Area of Science:
- Muscle biology
- Developmental biology
- Cellular and molecular biology
Background:
- MyoD-deficient mice typically display normal skeletal muscle and lifespan.
- However, MyoD deficiency exacerbates muscle degeneration in mdx mice, leading to lethality.
- This study investigates the detailed phenotype of MyoD-deficient satellite cells in adult muscle.
Purpose of the Study:
- To characterize the tissue, cellular, and molecular differences in adult MyoD-deficient muscle fibers and satellite cells.
- To understand the specific defects in satellite cell activation, maturation, and differentiation in the absence of MyoD.
- To identify molecular regulators potentially involved in the quiescent state of MyoD-deficient satellite cells.
Main Methods:
- Single myofiber cultures from MyoD-deficient mice.
- Single-cell RNA coexpression analysis of myogenic regulatory factors (MRFs), c-met, and m-cadherin.
- Analysis of gene expression for regulators of growth, differentiation, cell cycle, and signaling.
Main Results:
- Elevated satellite cell numbers and abnormal fiber morphology in MyoD(-/-) mice, indicating chronic regeneration.
- Mutant satellite cells initiate cell cycle and upregulate Myf5 but fail to upregulate MRF4 and show reduced Myogenin and m-cadherin expression.
- MyoD(-/-) satellite cells exhibit impaired fusion, >90% reduction in differentiation efficiency, and form unusual aggregates.
- GDF8 and Msx1 expression profiles differ in MyoD(-/-) versus wildtype quiescent satellite cells.
Conclusions:
- Activated MyoD(-/-) satellite cells display a developmentally stalled phenotype with unique molecular and cellular characteristics.
- These cells are not simply immature but exhibit novel properties distinct from wild-type muscle precursors.
- MyoD plays a critical role in normal satellite cell maturation, differentiation, and preventing aberrant cellular states.
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