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Silencing of Mustn1 inhibits myogenic fusion and differentiation
Cheng Liu1, Robert P Gersch, Thomas J Hawke
1Dept. of Biomedical Engineering, Stony Brook Univ., NY 11794-2580, USA.
Abstract:
Mustn1 (Mustang, musculoskeletal temporally activated novel gene) was originally identified in fracture callus tissue, but its greatest expression is detected in skeletal muscle. Thus, we conducted experiments to investigate the expression and function of Mustn1 during myogenesis. Temporally, quantitative real-time PCR analysis of muscle samples from embryonic day 17 to 12 mo of age reveals that Mustn1 mRNA expression is greatest at 3 mo of age and beyond, consistent with the expression pattern of Myod. In situ hybridization shows abundant Mustn1 expression in somites and developing skeletal muscles, while in adult muscle, Mustn1 is localized to some peripherally located nuclei. Using RNA interference (RNAi), we investigated the function of Mustn1 in C2C12 myoblasts. Though silencing Mustn1 mRNA had no effect on myoblast proliferation, it did significantly impair myoblast differentiation, preventing myofusion. Specifically, when placed in low-serum medium for up to 6 days, Mustn1-silenced myoblasts elongated poorly and were mononucleated. In contrast, control RNAi-treated and parental myoblasts presented as large, multinucleated myotubes. Further supporting the morphological observations, immunocytochemistry of Mustn1-silenced cells demonstrated significant reductions in myogenin (Myog) and myosin heavy chain (Myhc) expression at 4 and 6 days of differentiation as compared with control and parental cells. The decreases in Myog and Myhc protein expression in Mustn1-silenced cells were associated with robust ( approximately 3-fold or greater) decreases in the expression of Myod and desmin (Des), as well as the myofusion markers calpain 1 (Capn1), caveolin 3 (Cav3), and cadherin 15 (M-cadherin; Cadh15). Overall, we demonstrate that Mustn1 is an essential regulator of myogenic differentiation and myofusion, and our findings implicate Myod and Myog as its downstream targets.
Insights
Mustn1 (Mustang, musculoskeletal temporally activated novel gene) is crucial for skeletal muscle development. Silencing Mustn1 impairs myoblast differentiation and myofusion, highlighting its essential role in muscle formation.
Area of Science:
- Molecular Biology
- Muscle Development
- Gene Expression
Background:
- Mustn1 (Mustang, musculoskeletal temporally activated novel gene) was initially identified in fracture callus tissue.
- Its highest expression is observed in skeletal muscle, suggesting a role in myogenesis.
Purpose of the Study:
- To investigate the expression pattern of Mustn1 during myogenesis.
- To elucidate the function of Mustn1 in skeletal muscle differentiation and myoblast fusion.
Main Methods:
- Quantitative real-time PCR and in situ hybridization were used to analyze Mustn1 expression in developing and adult muscle tissues.
- RNA interference (RNAi) was employed to silence Mustn1 in C2C12 myoblasts to assess its functional role.
- Immunocytochemistry was performed to evaluate the expression of key myogenic markers.
Main Results:
- Mustn1 mRNA expression peaks at 3 months of age in skeletal muscle, correlating with Myod expression.
- Silencing Mustn1 significantly inhibited myoblast differentiation and myofusion, resulting in mononucleated cells.
- Reduced expression of myogenin (Myog), myosin heavy chain (Myhc), Myod, desmin, and myofusion markers was observed in Mustn1-silenced cells.
Conclusions:
- Mustn1 is an essential regulator of myogenic differentiation and myofusion in skeletal muscle.
- The findings suggest that Myod and Myogenin are downstream targets of Mustn1.
- Mustn1 plays a critical role in the development and function of skeletal muscle.
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