Department of Anesthesiology, Washington University School of Medicine, St. Louis MO.
Department of Biochemistry, Duke University School of Medicine, Durham, NC.
J Gen Physiol. 2017 Nov 6;149(11):985-1007. doi: 10.1085/jgp.201711845. Epub 2017 Oct 12.
For those interested in the machinery of ion channel gating, the Ca and voltage-activated BK K channel provides a compelling topic for investigation, by virtue of its dual allosteric regulation by both voltage and intracellular Ca and because its large-single channel conductance facilitates detailed kinetic analysis. Over the years, biophysical analyses have illuminated details of the allosteric regulation of BK channels and revealed insights into the mechanism of BK gating, e.g., inner cavity size and accessibility and voltage sensor-pore coupling. Now the publication of two structures of an BK channel-one liganded and one metal free-promises to reinvigorate functional studies and interpretation of biophysical results. The new structures confirm some of the previous functional inferences but also suggest new perspectives regarding cooperativity between Ca-binding sites and the relationship between voltage- and Ca-dependent gating. Here we consider the extent to which the two structures explain previous functional data on pore-domain properties, voltage-sensor motions, and divalent cation binding and activation of the channel.
对于那些对离子通道门控机制感兴趣的人来说,Ca 和电压激活的 BK K 通道因其同时受到电压和细胞内 Ca 的双重变构调节,以及其大单一通道电导有利于详细的动力学分析,为研究提供了一个引人入胜的主题。多年来,生物物理分析阐明了 BK 通道变构调节的细节,并揭示了 BK 门控机制的见解,例如内腔大小和可及性以及电压传感器-孔耦合。现在,两篇关于 BK 通道的结构的论文的发表——一篇配体结合,一篇无金属——有望重振功能研究和对生物物理结果的解释。新结构证实了一些先前的功能推断,但也提出了关于 Ca 结合位点之间的协同作用以及电压和 Ca 依赖性门控之间关系的新观点。在这里,我们考虑这两个结构在多大程度上解释了先前关于孔域性质、电压传感器运动以及二价阳离子结合和通道激活的功能数据。