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Selective disruption of the mammalian secretory apparatus enhances or eliminates calcium current modulation in nerve endings

机译:哺乳动物分泌装置的选择性破坏增强或消除了神经末梢的钙电流调节

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摘要

Modulation of secretion via G protein-coupled receptors (GPCRs) serves an important regulatory function in neuronal and nonneuronal secretory cells. Most secretory cells possess voltage-gated calcium channels, share homologues of the core complex of three proteins (the SNAREs) that constitute the secretory apparatus, and are modulated by GPCR activation. Activators of GPCRs generally inhibit the release of neurotransmitter substances to a maximum of only 50–60% of the control level, suggesting that complex protein–protein interactions may govern the efficacy of this form of modulation. In this article, molecular genetic approaches are used in combination with botulinum toxins (selective molecular scalpels that cleave the SNAREs at highly restricted loci) to address this issue. The results suggest that the cleavage of either of the plasma membrane SNAREs (syntaxin or SNAP-25) prevents modulation of calcium currents by A1 adenosine receptors at mammalian motor nerve endings. In contrast, cleavage of the synaptic vesicle SNARE (synaptobrevin) in conjunction with deletion of the vesicle-docking protein Rab3A greatly enhances the efficacy of calcium current modulation.
机译:通过G蛋白偶联受体(GPCR)的分泌调节在神经元和非神经元分泌细胞中起重要的调节作用。大多数分泌细胞具有电压门控的钙通道,共享构成分泌装置的三种蛋白质(SNARE)核心复合物的同源物,并通过GPCR激活进行调节。 GPCR的激活剂通常将神经递质的释放抑制到最多仅占对照水平的50-60%,这表明复杂的蛋白质-蛋白质相互作用可能控制这种调节形式的功效。在本文中,分子遗传学方法与肉毒杆菌毒素(在高度受限的基因座处切割SNARE的选择性分子手术刀)结合使用,以解决此问题。结果表明,任一质膜SNARE(syntaxin或SNAP-25)的裂解均会阻止哺乳动物运动神经末梢的A1腺苷受体对钙电流的调节。相反,对突触小泡SNARE(synaptobrevin)的裂解与对接蛋白Rab3A的缺失大大增强了钙电流调节的功效。

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