Zamponi G W, Bourinet E, Nelson D, Nargeot J, Snutch T P
Biotechnology Laboratory, University of British Columbia, Vancouver, Canada.
Nature. 1997 Jan 30;385(6615):442-6. doi: 10.1038/385442a0.
The modulation of voltage-dependent Ca2+ channels at presynaptic nerve terminals is an important factor in the control of neurotransmitter release and synaptic efficacy. Some terminals contain multiple Ca2(+)-channel subtypes (N and P/Q), which are differentially regulated by G-protein activation and by protein kinase C (PKC)-dependent phosphorylation. Regulation of channel activity by crosstalk between second messenger pathways has been reported although the molecular mechanisms underlying crosstalk have not been described. Here we show that crosstalk occurs at the level of the presynaptic Ca2(+)-channel complex. The alpha1 subunit domain I-II linker, which connects the first and second transmembrane domains, contributes to the PKC-dependent upregulation of channel activity, while G-protein-dependent inhibition occurs through binding of Gbetagamma to two sites in the I-II linker. Crosstalk results from the PKC-dependent phosphorylation of one of the Gbetagamma binding sites which antagonizes Gbetagamma-induced inhibition. The results provide a mechanism for the highly regulated and dynamic control of neurotransmitter release that depends on the integration of multiple presynaptic signals.
突触前神经末梢电压依赖性Ca2+通道的调节是控制神经递质释放和突触效能的一个重要因素。一些末梢含有多种Ca2+通道亚型(N型和P/Q型),它们受G蛋白激活和蛋白激酶C(PKC)依赖性磷酸化的差异调节。尽管尚未描述串扰的分子机制,但已有报道称第二信使途径之间的串扰可调节通道活性。在这里,我们表明串扰发生在突触前Ca2+通道复合体水平。连接第一和第二跨膜结构域的α1亚基结构域I-II连接体有助于PKC依赖性的通道活性上调,而G蛋白依赖性抑制则通过Gβγ与I-II连接体中的两个位点结合而发生。串扰源于Gβγ结合位点之一的PKC依赖性磷酸化,该磷酸化拮抗Gβγ诱导的抑制。这些结果为神经递质释放的高度调控和动态控制提供了一种机制,该机制依赖于多个突触前信号的整合。