Prekeris R, Terrian D M
Department of Anatomy and Cell Biology, East Carolina University School of Medicine, Greenville, North Carolina 27858, USA.
J Cell Biol. 1997 Jun 30;137(7):1589-601. doi: 10.1083/jcb.137.7.1589.
Brain myosin V is a member of a widely distributed class of unconventional myosins that may be of central importance to organelle trafficking in all eukaryotic cells. Molecular constituents that target this molecular motor to organelles have not been previously identified. Using a combination of immunopurification, extraction, cross-linking, and coprecipitation assays, we demonstrate that the tail domain of brain myosin V forms a stable complex with the synaptic vesicle membrane proteins, synaptobrevin II and synaptophysin. While myosin V was principally bound to synaptic vesicles during rest, this putative transport complex was promptly disassembled upon the depolarization-induced entry of Ca2+ into intact nerve endings. Coimmunoprecipitation assays further indicate that Ca2+ disrupts the in vitro binding of synaptobrevin II to synaptophysin in the presence but not in the absence of Mg2+. We conclude that hydrophilic forces reversibly couple the myosin V tail to a biochemically defined class of organelles in brain nerve terminals.
脑肌球蛋白V是广泛分布的非传统肌球蛋白家族的成员,可能对所有真核细胞中的细胞器运输至关重要。此前尚未鉴定出将这种分子马达靶向细胞器的分子成分。通过免疫纯化、提取、交联和共沉淀分析相结合的方法,我们证明脑肌球蛋白V的尾部结构域与突触小泡膜蛋白、突触囊泡蛋白II和突触素形成稳定的复合物。虽然肌球蛋白V在静息状态下主要与突触小泡结合,但在去极化诱导Ca2+进入完整神经末梢后,这种假定的运输复合物会迅速解体。免疫共沉淀分析进一步表明,在有Mg2+存在但无Mg2+时,Ca2+会破坏突触囊泡蛋白II与突触素的体外结合。我们得出结论,亲水力将肌球蛋白V尾部与脑神经末梢中一类生化定义明确的细胞器可逆地结合在一起。