Mechanism of Rectification in Inward-Rectifier K+ Channels
Open Access
- 1 March 2004
- journal article
- review article
- Published by Annual Reviews in Annual Review of Physiology
- Vol. 66 (1) , 103-129
- https://doi.org/10.1146/annurev.physiol.66.032102.150822
Abstract
▪ Abstract Inward rectifiers are a class of K+ channels that can conduct much larger inward currents at membrane voltages negative to the K+ equilibrium potential than outward currents at voltages positive to it, even when K+ concentrations on both sides of the membrane are made equal. This conduction property, called inward rectification, enables inward rectifiers to perform many important physiological tasks. Rectification is not an inherent property of the channel protein itself, but reflects strong voltage dependence of channel block by intracellular cations such as Mg2+ and polyamines. This voltage dependence results primarily from the movement of K+ ions across the transmembrane electric field along the pore, which is energetically coupled to the blocker binding and unbinding. This mutual displacement mechanism between several K+ ions and a blocker explains the signature feature of inward rectifier K+ channels, namely, that at a given concentration of intracellular K+, their macroscopic conductance depends on the difference between membrane voltage and the K+ equilibrium potential rather than on membrane voltage itself.Keywords
This publication has 113 references indexed in Scilit:
- X-ray structure of a voltage-dependent K+ channelNature, 2003
- [K+] dependence of polyamine-induced rectification in inward rectifier potassium channels (IRK1, Kir2.1).The Journal of general physiology, 1996
- A conductance maximum observed in an inward-rectifier potassium channel.The Journal of general physiology, 1994
- Segmental exchanges define 4-aminopyridine binding and the inner mouth of K+ poresNeuron, 1993
- Determination of the subunit stoichiometry of a voltage-activated potassium channelNature, 1991
- Mapping the receptor site for charybdotoxin, a pore-blocking potassium channel inhibitorNeuron, 1990
- A model for anomalous rectification: Electrochemical-potential-dependent gating of membrane channelsThe Journal of Membrane Biology, 1978
- The anomalous rectification and cation selectivity of the membrane of a starfish egg cellThe Journal of Membrane Biology, 1974
- Anomalous Rectification in the Squid Giant Axon Injected with Tetraethylammonium ChlorideThe Journal of general physiology, 1965
- DEMONSTRATION OF TWO STABLE POTENTIAL STATES IN THE SQUID GIANT AXON UNDER TETRAETHYLAMMONIUM CHLORIDEThe Journal of general physiology, 1957