Related Experiment Videos
Distinct effects of Rac1 on differentiation of primary avian myoblasts
R Gallo1, M Serafini, L Castellani
1Istituto di Biologia Cellulare, Consiglio Nazionale delle Richerche, 00137 Rome, Italy.
Abstract:
Rho family GTPases have been implicated in the regulation of the actin cytoskeleton in response to extracellular cues and in the transduction of signals from the membrane to the nucleus. Their role in development and cell differentiation, however, is little understood. Here we show that the transient expression of constitutively active Rac1 and Cdc42 in unestablished avian myoblasts is sufficient to cause inhibition of myogenin expression and block of the transition to the myocyte compartment, whereas activated RhoA affects myogenic differentiation only marginally. Activation of c-Jun N-terminal kinase (JNK) appears not to be essential for block of differentiation because, although Rac1 and Cdc42 GTPases modestly activate JNK in quail myoblasts, a Rac1 mutant defective for JNK activation can still inhibit myogenic differentiation. Stable expression of active Rac1, attained by infection with a recombinant retrovirus, is permissive for terminal differentiation, but the resulting myotubes accumulate severely reduced levels of muscle-specific proteins. This inhibition is the consequence of posttranscriptional events and suggests the presence of a novel level of regulation of myogenesis. We also show that myotubes expressing constitutively active Rac1 fail to assemble ordered sarcomeres. Conversely, a dominant-negative Rac1 variant accelerates sarcomere maturation and inhibits v-Src-induced selective disassembly of I-Z-I complexes. Collectively, our findings provide a role for Rac1 during skeletal muscle differentiation and strongly suggest that Rac1 is required downstream of v-Src in the signaling pathways responsible for the dismantling of tissue-specific supramolecular structures.
Insights
Constitutively active Rac1 and Cdc42 GTPases inhibit avian myoblast differentiation by blocking myogenin expression. Rac1 plays a crucial role in skeletal muscle differentiation and sarcomere assembly.
Area of Science:
- Cell Biology
- Molecular Biology
- Developmental Biology
Background:
- Rho family GTPases regulate the actin cytoskeleton and signal transduction.
- The role of Rho GTPases in cell differentiation, particularly myogenesis, is not well understood.
Purpose of the Study:
- To investigate the role of Rho family GTPases, specifically Rac1, Cdc42, and RhoA, in avian skeletal muscle differentiation.
- To elucidate the molecular mechanisms by which these GTPases influence myogenesis and sarcomere formation.
Main Methods:
- Transient and stable expression of constitutively active and dominant-negative Rho GTPase variants in avian myoblasts.
- Analysis of myogenin expression, myocyte differentiation, and muscle-specific protein levels.
- Assessment of sarcomere assembly and I-Z-I complex stability.
Main Results:
- Transiently active Rac1 and Cdc42 inhibited myogenin expression and myocyte differentiation, while RhoA had minimal effect.
- Stable Rac1 expression allowed differentiation but resulted in reduced muscle-specific proteins via posttranscriptional regulation.
- Active Rac1 impaired ordered sarcomere assembly, whereas dominant-negative Rac1 promoted it and inhibited v-Src-induced disassembly.
Conclusions:
- Rac1 plays a significant role in skeletal muscle differentiation, particularly in sarcomere organization.
- Rac1 acts downstream of v-Src signaling to regulate the dismantling of supramolecular structures during myogenesis.
- A novel level of posttranscriptional regulation in myogenesis involving Rac1 is suggested.