Literature DB >> 22499946

Mechanism of voltage gating in potassium channels.

Morten Ø Jensen1, Vishwanath Jogini, David W Borhani, Abba E Leffler, Ron O Dror, David E Shaw.   

Abstract

The mechanism of ion channel voltage gating-how channels open and close in response to voltage changes-has been debated since Hodgkin and Huxley's seminal discovery that the crux of nerve conduction is ion flow across cellular membranes. Using all-atom molecular dynamics simulations, we show how a voltage-gated potassium channel (KV) switches between activated and deactivated states. On deactivation, pore hydrophobic collapse rapidly halts ion flow. Subsequent voltage-sensing domain (VSD) relaxation, including inward, 15-angstrom S4-helix motion, completes the transition. On activation, outward S4 motion tightens the VSD-pore linker, perturbing linker-S6-helix packing. Fluctuations allow water, then potassium ions, to reenter the pore; linker-S6 repacking stabilizes the open pore. We propose a mechanistic model for the sodium/potassium/calcium voltage-gated ion channel superfamily that reconciles apparently conflicting experimental data.

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Year:  2012        PMID: 22499946     DOI: 10.1126/science.1216533

Source DB:  PubMed          Journal:  Science        ISSN: 0036-8075            Impact factor:   47.728


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