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Preliminary quantitative profile of differential protein expression between rat L6 myoblasts and myotubes by stable isotope labeling with amino acids in cell culture. | LitMetric

AI Article Synopsis

  • Recent advancements in understanding the mechanisms of myogenesis highlight its complexity, which is regulated by various transcriptional factors during the differentiation of skeletal muscle.
  • Researchers utilized stable isotope labeling with amino acids in cell culture (SILAC) and high-accuracy mass spectrometry to analyze protein expression in the rat L6 cell line, a suitable model for studying muscle development.
  • A comparison of myoblasts and fully differentiated multinucleated myotubes revealed 379 significantly changing proteins involved in critical cellular processes, providing new insights into the molecular processes driving muscle differentiation.

Article Abstract

Defining the mechanisms governing myogenesis has advanced in recent years. Skeletal-muscle differentiation is a multi-step process controlled spatially and temporally by various factors at the transcription level. To explore those factors involved in myogenesis, stable isotope labeling with amino acids in cell culture (SILAC), coupled with high-accuracy mass spectrometry (LTQ-Orbitrap), was applied successfully. Rat L6 cell line is an excellent model system for studying muscle myogenesis in vitro. When mononucleate L6 myoblast cells reach confluence in culture plate, they could transform into multinucleate myotubes by serum starvation. By comparing protein expression of L6 myoblasts and terminally differentiated multinucleated myotubes, 1170 proteins were quantified and 379 proteins changed significantly in fully differentiated myotubes in contrast to myoblasts. These differentially expressed proteins are mainly involved in inter-or intracellular signaling, protein synthesis and degradation, protein folding, cell adhesion and extracellular matrix, cell structure and motility, metabolism, substance transportation, etc. These findings were supported by many previous studies on myogenic differentiation, of which many up-regulated proteins were found to be involved in promoting skeletal muscle differentiation for the first time in our study. In summary, our results provide new clues for understanding the mechanism of myogenesis.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC2946197PMC
http://dx.doi.org/10.1002/pmic.200800354DOI Listing

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