K channel gating by an affinity-switching selectivity filter
- 19 February 2004
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 101 (9) , 3248-3252
- https://doi.org/10.1073/pnas.0308743101
Abstract
A universal property of ion channels is their ability to alternate stochastically between two permeation states, open and closed. This behavior is thought to be controlled by a steric "gate", a structure that physically impedes ion flow in the closed state and moves out of the way during channel opening. Experiments employing macroscopic currents in the Shaker K channel have suggested a cytoplasmic localization for the gate. Crystallographic structures of the KcsA K channel indeed reveal a cytoplasmic constriction, implying that the gate and selectivity filter are localized to opposite ends of the permeation pathway. However, analysis of K channel subconductance behavior has suggested a strict coupling between channel opening (gating) and permeation. The idea that the selectivity filter is the gate was therefore investigated by using Monte Carlo simulations. Gating is accomplished by allowing the filter to alternate stochastically between two conformations: a high-affinity state, which selectively binds K ions (but not Na ions) and traps them, and a completely nonselective, low-affinity state, which allows both Na and K ions to permeate. The results of these simulations indicate that affinity switching not only endows the selectivity filter with gating abilities, it also allows efficient permeation without jeopardizing ion selectivity. In this model, permeation and gating result from the same process.Keywords
This publication has 30 references indexed in Scilit:
- X-ray structure of a voltage-dependent K+ channelNature, 2003
- Defining the Conductance of the Closed State in a Voltage-Gated K+ ChannelNeuron, 2003
- Crystal structure and mechanism of a calcium-gated potassium channelNature, 2002
- Tight Steric Closure at the Intracellular Activation Gate of a Voltage-Gated K+ ChannelNeuron, 2001
- KcsaThe Journal of general physiology, 2001
- The Structure of the Potassium Channel: Molecular Basis of K + Conduction and SelectivityScience, 1998
- Permeation Selectivity by Competition in a Delayed Rectifier Potassium ChannelScience, 1995
- Structural basis of ion channel permeation and selectivityCurrent Opinion in Neurobiology, 1994
- Single-channel currents recorded from membrane of denervated frog muscle fibresNature, 1976
- Interaction of Tetraethylammonium Ion Derivatives with the Potassium Channels of Giant AxonsThe Journal of general physiology, 1971