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大电导钙和电压门控钾通道在每个门控循环中与膜脂质形成和打破相互作用。

Large-conductance Ca- and voltage-gated K channels form and break interactions with membrane lipids during each gating cycle.

机构信息

Department of Physiology, University of Pennsylvania, Philadelphia, PA 19104;

Center for Molecular Biomedicine, Department of Biophysics, Jena University Hospital, Friedrich Schiller University, D-07745 Jena, Germany.

出版信息

Proc Natl Acad Sci U S A. 2019 Apr 23;116(17):8591-8596. doi: 10.1073/pnas.1901381116. Epub 2019 Apr 9.

Abstract

Membrane depolarization and intracellular Ca promote activation of the large-conductance Ca- and voltage-gated (Slo1) big potassium (BK) channel. We examined the physical interactions that stabilize the closed and open conformations of the ion conduction gate of the human Slo1 channel using electrophysiological and computational approaches. The results show that the closed conformation is stabilized by intersubunit ion-ion interactions involving negative residues (E321 and E324) and positive residues (RKK) at the cytoplasmic ends of the transmembrane S6 segments ("RKK ring"). When the channel gate is open, the RKK ring is broken and the positive residues instead make electrostatic interactions with nearby membrane lipid oxygen atoms. E321 and E324 are stabilized by water. When the RKK residues are mutated to hydrophobic amino acids, these residues form even stronger hydrophobic interactions with the lipid tails to promote the open conformation, shifting the voltage dependence of activation to the negative direction by up to 400 mV and stabilizing the selectivity filter region. Thus, the RKK segment forms electrostatic interactions with oxygen atoms from two sources, other amino acid residues (E321/E324), and membrane lipids, depending on the gate status. Each time the channel opens and closes, the aforementioned interactions are formed and broken. This lipid-dependent Slo1 gating may explain how amphipathic signaling molecules and pharmacologically active agents influence the channel activity, and a similar mechanism may be operative in other ion channels.

摘要

膜去极化和细胞内 Ca 促进大电导钙和电压门控(Slo1)大钾(BK)通道的激活。我们使用电生理和计算方法研究了稳定人 Slo1 通道离子传导门的闭和开构象的物理相互作用。结果表明,闭构象通过涉及细胞质 S6 段跨膜末端的负残基(E321 和 E324)和正残基(RKK)的亚基间离子-离子相互作用稳定(“RKK 环”)。当通道门打开时,RKK 环被破坏,正残基反而与附近膜脂质氧原子形成静电相互作用。E321 和 E324 由水稳定。当 RKK 残基突变为疏水性氨基酸时,这些残基与脂质尾部形成更强的疏水相互作用,促进开放构象,将激活的电压依赖性负向移动多达 400 mV,并稳定选择性过滤器区域。因此,RKK 段根据门状态与来自两个来源的氧原子形成静电相互作用,来自其他氨基酸残基(E321/E324)和膜脂质。每次通道打开和关闭时,都会形成和破坏上述相互作用。这种依赖脂质的 Slo1 门控可能解释了两亲性信号分子和药理学活性物质如何影响通道活性,并且类似的机制可能在其他离子通道中起作用。

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