Mitochondrial development during myogenesis.
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Fusion of myoblasts is inhibited in cultures at low Ca++ concentration (0.44 mM); yet creatine phosphokinase and myokinase activities as well as myosin synthesis and the appearance of post-mitotic myoblasts do not significantly differ from those of control cultures (grown at 1.04 mM Ca++) which undergo cell fusion. When Ca++ concentration is increased to the control value after the second day of culture, fusion occurs very rapidly and it is not inhibited by actinomycin D or cycloheximide. Treatment with 0.06 mM bromodeoxyuridine strongly inhibits creatine phosphokinase activity and myotubes formation. The study of the kinetics of reversal of cell fusion and of creatine phosphokinase activity after removal of the analog, shows that this process is slower than the decrease of the relative content of bromodeoxyuridine incorporated into DNA. The result obtained support the following conclusions: a) the expression of the differentiative characters examined does not require cell fusion; b) the process of myotube formation seems to imply two subsequent stages consisting first of a slow maturative process, which is followed by the actual fusion of cell membranes; the former is Ca++ independent, the latter is Ca++ dependent and does not require RNA or protein synthesis.
Cultured quail myoblasts were labelled with 32Pi and nuclear proteins extracted before and after myoblast fusion. Histones H1, H4 and the H1-H2B-H2A complex were all phosphorylated in proliferating prefusion cultures, while histone phosphorylation was absent in B1-arrested postfusion cultures except for minor phosphorylation of the H3-H2B-H2A complex. Postfused cultures were distinguished by the appearance of the histone-like protein whch migrated slightly faster than H1. Histone phosphorylation is therefore correlated with cell proliferation, while the appearance of the new histone-like protein is associated with G1 arrest and the absence of cell division.
A cDNA copy of purified chick embryonic skeletal myosin heavy chain mRNA (MHC mRNA) distinguished between myogenic and nonmyogenic cells compared by in vitro and in situ hybridization. The majority of cells in replicating mononucleate myogenic cell cultures contained no detectable MHC mRNA. Among the earliest cells to contain MHC mRNA were cells engaged in mitosis. A relatively large amount of MHC mRNA was found in postmitotic monucleate cells and myotubes, and we observed nucleolar localization of MHC mRNA in these cells.