| Literature DB >> 36072506 |
Fenghui Guan1,2, Tianyu Li3,4, Wei Dong5, Rui Guo6, Hao Chai3,4, Zhiqiu Chen4, Zhong Ren7,8, Yang Li3,4,9, Sheng Ye1,5.
Abstract
Allostery is a fundamental element during channel gating in response to an appropriate stimulus by which events occurring at one site are transmitted to distal sites to regulate activity. To address how binding of the first Ca2+ ion at one of the eight chemically identical subunits facilitates the other Ca2+-binding events in MthK, a Ca2+-gated K+ channel containing a conserved ligand-binding RCK domain, we analysed a large collection of MthK structures and performed the corresponding thermodynamic and electrophysiological measurements. These structural and functional studies led us to conclude that the conformations of the Ca2+-binding sites alternate between two quaternary states and exhibit significant differences in Ca2+ affinity. We further propose an allosteric model of the MthK-gating mechanism by which a cascade of structural events connect the initial Ca2+-binding to the final changes of the ring structure that open the ion-conduction pore. This mechanical model reveals the exquisite design that achieves the allosteric gating and could be of general relevance for the action of other ligand-gated ion channels containing the RCK domain.Entities:
Keywords: allosteric gating mechanism; ion channel; protein structural data analysis
Year: 2022 PMID: 36072506 PMCID: PMC9440719 DOI: 10.1093/nsr/nwac072
Source DB: PubMed Journal: Natl Sci Rev ISSN: 2053-714X Impact factor: 23.178