Key result
Expression of myopathy-related actin mutants in differentiated C2C12 myotubes resulted in diverse phenotypes, including aberrant stress fibers and cytoplasmic aggregates, which often differed from those seen in undifferentiated myoblasts.
Differentiated C2C12 myotubes provide a more physiologically relevant in vitro model than undifferentiated myoblasts to study the pathological changes induced by myopathy-related actin mutants.
Differentiated C2C12 myotubes may better capture actin myopathy phenotypes than myoblasts; leaves open optimized in vitro models for translation.
BACKGROUND: About 20 % of nemaline myopathies are thus far related to skeletal muscle alpha-actin. Seven actin mutants located in different parts of the actin molecule and linked to different forms of the disease were selected and expressed as EGFP-tagged constructs in differentiated C2C12 mytoubes. Results were compared with phenotypes in patient skeletal muscle fibres and with previous expression studies in fibroblasts and C2C12 myoblasts/myotubes. RESULTS: Whereas EGFP wt-actin nicely incorporated into endogenous stress fibres and sarcomeric structures, the mutants showed a range of phenotypes, which generally changed upon differentiation. Many mutants appeared delocalized in myoblasts but integrated into endogenous actin structures after 4-6 days of differentiation, demonstrating a poor correlation between the appearance in myotubes and the severity of the disease. However, for some mutants, integration into stress fibres induced aberrant structures in differentiated cells, like thickening or fragmentation of stress fibres. Other mutants almost failed to integrate but formed huge aggregates in the cytoplasm of myotubes. Those did not co-stain with alpha-actinin, a main component of nemaline bodies found in patient muscle. Interestingly, nuclear aggregates as formed by two of the mutants in myoblasts were found less frequently or not at all in differentiated cells. CONCLUSION: Myotubes are a suitable system to study the capacity of a mutant to incorporate into actin structures or to form or induce pathological changes. Some of the phenotypes observed in undifferentiated myoblasts may only be in vitro effects. Other phenotypes, like aberrant stress fibres or rod formation may be more directly correlated with disease phenotypes. Some mutants did not induce any changes in the cellular actin system, indicating the importance of additional studies like functional assays to fully characterize the pathological impact of a mutant.
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Bathe et al. (2007) studied Actin myopathy. EGFP-tagged myopathy-related actin mutants vs. Wild-type EGFP-actin was evaluated on Actin incorporation and cellular phenotype. Expression of myopathy-related actin mutants in differentiated C2C12 myotubes resulted in diverse phenotypes, including aberrant stress fibers and cytoplasmic aggregates, which often differed from those seen in undifferentiated myoblasts.
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