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Pore stability and gating in voltage-activated calcium channels: Pore stability and gating in voltage-gated calcium channels

机译:电压激活钙通道中的孔稳定性和门控:电压门控钙通道中的孔稳定性和门控

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摘要

Calcium channel family members activate at different membrane potentials, which enables tissue specific calcium entry. Pore mutations affecting this voltage dependence are associated with channelopathies. In this review we analyze the link between voltage sensitivity and corresponding kinetic phenotypes of calcium channel activation. Systematic changes in hydrophobicity in the lower third of S6 segments gradually shift the activation curve thereby determining the voltage sensitivity. Homology modeling suggests that hydrophobic residues that are located in all four S6 segments close to the inner channel mouth might form adhesion points stabilizing the closed gate. Simulation studies support a scenario where voltage sensors and the pore are essentially independent structural units. We speculate that evolution designed the voltage sensing machinery as robust "all-or-non" device while the varietys of voltage sensitivities of different channel types was accomplished by shaping pore stability.
机译:钙通道家族成员在不同的膜电位下活化,这使得组织特异性钙进入。影响这种电压依赖性的孔突变与通道病有关。在这篇综述中,我们分析了电压敏感性与钙通道激活的相应动力学表型之间的联系。在S6的下部三分之一中疏水性的系统变化逐渐使活化曲线移动,从而确定电压敏感性。同源性建模表明,位于靠近内部通道口的所有四个S6段中的疏水残基可能形成稳定闭合门的粘附点。仿真研究支持一种方案,其中电压传感器和孔本质上是独立的结构单元。我们推测,进化将电压传感设备设计为坚固的“全有或全无”设备,而通过塑造孔隙稳定性来实现不同通道类型的各种电压敏感性。

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