XB-ART-46410
J Gen Physiol
2012 Sep 01;1403:307-24. doi: 10.1085/jgp.201210826.
Show Gene links
Show Anatomy links
Tuning of EAG K(+) channel inactivation: molecular determinants of amplification by mutations and a small molecule.
Garg V, Sachse FB, Sanguinetti MC.
???displayArticle.abstract???
Ether-à-go-go (EAG) and EAG-related gene (ERG) K(+) channels are close homologues but differ markedly in their gating properties. ERG1 channels are characterized by rapid and extensive C-type inactivation, whereas mammalian EAG1 channels were previously considered noninactivating. Here, we show that human EAG1 channels exhibit an intrinsic voltage-dependent slow inactivation that is markedly enhanced in rate and extent by 1-10 µM 3-nitro-N-(4-phenoxyphenyl) benzamide, or ICA105574 (ICA). This compound was previously reported to have the opposite effect on ERG1 channels, causing an increase in current magnitude by inhibition of C-type inactivation. The voltage dependence of 2 µM ICA-induced inhibition of EAG1 current was half-maximal at -73 mV, 62 mV negative to the half-point for channel activation. This finding suggests that current inhibition by the drug is mediated by enhanced inactivation and not open-channel block, where the voltage half-points for current inhibition and channel activation are predicted to overlap, as we demonstrate for clofilium and astemizole. The mutation Y464A in the S6 segment also induced inactivation of EAG1, with a time course and voltage dependence similar to that caused by 2 µM ICA. Several Markov models were investigated to describe gating effects induced by multiple concentrations of the drug and the Y464A mutation. Models with the smallest fit error required both closed- and open-state inactivation. Unlike typical C-type inactivation, the rate of Y464A- and ICA-induced inactivation was not decreased by external tetraethylammonium or elevated [K(+)](e). EAG1 channel inactivation introduced by Y464A was prevented by additional mutation of a nearby residue located in the S5 segment (F359A) or pore helix (L434A), suggesting a tripartite molecular model where interactions between single residues in S5, S6, and the pore helix modulate inactivation of EAG1 channels.
???displayArticle.pubmedLink??? 22930803
???displayArticle.pmcLink??? PMC3434097
???displayArticle.link??? J Gen Physiol
???displayArticle.grants??? [+]
Species referenced: Xenopus
Genes referenced: canx erg gnao1 kcnh1 kcnh2
???attribute.lit??? ???displayArticles.show???
References [+] :
Abbruzzese, Modification of hERG1 channel gating by Cd2+. 2010, Pubmed , Xenbase
Arnold, The SWISS-MODEL workspace: a web-based environment for protein structure homology modelling. 2006, Pubmed
Brüggemann, Ether-à-go-go encodes a voltage-gated channel permeable to K+ and Ca2+ and modulated by cAMP. 1993, Pubmed , Xenbase
Chao, HMJ-53A accelerates slow inactivation gating of voltage-gated K+ channels in mouse neuroblastoma N2A cells. 2008, Pubmed
Chen, Acceleration of P/C-type inactivation in voltage-gated K(+) channels by methionine oxidation. 2000, Pubmed , Xenbase
Choi, Tetraethylammonium blockade distinguishes two inactivation mechanisms in voltage-activated K+ channels. 1991, Pubmed
Chou, Rhynchophylline from Uncaria rhynchophylla functionally turns delayed rectifiers into A-Type K+ channels. 2009, Pubmed
Choveau, Pore determinants of KCNQ3 K+ current expression. 2012, Pubmed
Choveau, Pore helix-S6 interactions are critical in governing current amplitudes of KCNQ3 K+ channels. 2012, Pubmed
Clay, Determining k channel activation curves from k channel currents often requires the goldman-hodgkin-katz equation. 2009, Pubmed
Cuello, Structural basis for the coupling between activation and inactivation gates in K(+) channels. 2010, Pubmed
Cuello, Structural mechanism of C-type inactivation in K(+) channels. 2010, Pubmed
Curran, A molecular basis for cardiac arrhythmia: HERG mutations cause long QT syndrome. 1995, Pubmed
De Biasi, Inactivation determined by a single site in K+ pores. 1993, Pubmed
Delpón, Block of human cardiac Kv1.5 channels by loratadine: voltage-, time- and use-dependent block at concentrations above therapeutic levels. 1997, Pubmed
Fernandez, Physicochemical features of the HERG channel drug binding site. 2004, Pubmed , Xenbase
Ganetzky, Neurogenetic analysis of potassium currents in Drosophila: synergistic effects on neuromuscular transmission in double mutants. 1983, Pubmed
García-Ferreiro, Mechanism of block of hEag1 K+ channels by imipramine and astemizole. 2004, Pubmed
Garg, Molecular determinants for activation of human ether-à-go-go-related gene 1 potassium channels by 3-nitro-n-(4-phenoxyphenyl) benzamide. 2011, Pubmed , Xenbase
Gerlach, Pharmacological removal of human ether-à-go-go-related gene potassium channel inactivation by 3-nitro-N-(4-phenoxyphenyl) benzamide (ICA-105574). 2010, Pubmed
Gessner, Molecular determinants for high-affinity block of human EAG potassium channels by antiarrhythmic agents. 2004, Pubmed , Xenbase
Gibor, An inactivation gate in the selectivity filter of KCNQ1 potassium channels. 2007, Pubmed , Xenbase
Goldin, Expression of ion channels by injection of mRNA into Xenopus oocytes. 1991, Pubmed , Xenbase
Gómez-Varela, Monoclonal antibody blockade of the human Eag1 potassium channel function exerts antitumor activity. 2007, Pubmed
González, Stereoselective effects of the enantiomers of a new local anaesthetic, IQB-9302, on a human cardiac potassium channel (Kv1.5). 2001, Pubmed
Grissmer, TEA prevents inactivation while blocking open K+ channels in human T lymphocytes. 1989, Pubmed
Gutman, International Union of Pharmacology. XLI. Compendium of voltage-gated ion channels: potassium channels. 2003, Pubmed
Hemmerlein, Overexpression of Eag1 potassium channels in clinical tumours. 2006, Pubmed
Holmgren, Trapping of organic blockers by closing of voltage-dependent K+ channels: evidence for a trap door mechanism of activation gating. 1997, Pubmed
Hoshi, Two types of inactivation in Shaker K+ channels: effects of alterations in the carboxy-terminal region. 1991, Pubmed , Xenbase
Hoshi, Biophysical and molecular mechanisms of Shaker potassium channel inactivation. 1990, Pubmed , Xenbase
Jerng, K+ channel inactivation mediated by the concerted action of the cytoplasmic N- and C-terminal domains. 1997, Pubmed , Xenbase
Klement, A tyrosine substitution in the cavity wall of a k channel induces an inverted inactivation. 2008, Pubmed , Xenbase
Klemic, Inactivation of Kv2.1 potassium channels. 1998, Pubmed , Xenbase
Klemic, U-type inactivation of Kv3.1 and Shaker potassium channels. 2001, Pubmed , Xenbase
Kurata, A structural interpretation of voltage-gated potassium channel inactivation. 2006, Pubmed
Lee, Open channel block of Kv1.5 currents by citalopram. 2010, Pubmed
Lin, Differences between ion binding to eag and HERG voltage sensors contribute to differential regulation of activation and deactivation gating. 2007, Pubmed , Xenbase
López-Barneo, Effects of external cations and mutations in the pore region on C-type inactivation of Shaker potassium channels. 1993, Pubmed , Xenbase
Martin, Eag1 potassium channel immunohistochemistry in the CNS of adult rat and selected regions of human brain. 2008, Pubmed
Melishchuk, Mechanism underlying slow kinetics of the OFF gating current in Shaker potassium channel. 2001, Pubmed
Mitcheson, A structural basis for drug-induced long QT syndrome. 2000, Pubmed , Xenbase
Pardo, Eag1 as a cancer target. 2008, Pubmed
Robertson, Potassium currents expressed from Drosophila and mouse eag cDNAs in Xenopus oocytes. 1996, Pubmed , Xenbase
Rosati, Evolution of ventricular myocyte electrophysiology. 2008, Pubmed
Sanguinetti, hERG potassium channels and cardiac arrhythmia. 2006, Pubmed
Sanguinetti, A mechanistic link between an inherited and an acquired cardiac arrhythmia: HERG encodes the IKr potassium channel. 1995, Pubmed , Xenbase
Sanguinetti, Spectrum of HERG K+-channel dysfunction in an inherited cardiac arrhythmia. 1996, Pubmed , Xenbase
Schönherr, Molecular determinants for activation and inactivation of HERG, a human inward rectifier potassium channel. 1996, Pubmed , Xenbase
Schreibmayer, Voltage clamping of Xenopus laevis oocytes utilizing agarose-cushion electrodes. 1994, Pubmed , Xenbase
Seebohm, Mutation of colocalized residues of the pore helix and transmembrane segments S5 and S6 disrupt deactivation and modify inactivation of KCNQ1 K+ channels. 2005, Pubmed , Xenbase
Smith, The inward rectification mechanism of the HERG cardiac potassium channel. 1996, Pubmed
Spector, Class III antiarrhythmic drugs block HERG, a human cardiac delayed rectifier K+ channel. Open-channel block by methanesulfonanilides. 1996, Pubmed , Xenbase
Stühmer, Electrophysiological recording from Xenopus oocytes. 1992, Pubmed , Xenbase
Suessbrich, Specific block of cloned Herg channels by clofilium and its tertiary analog LY97241. 1997, Pubmed , Xenbase
Terlau, Extracellular Mg2+ regulates activation of rat eag potassium channel. 1996, Pubmed , Xenbase
Titus, The Drosophila erg K+ channel polypeptide is encoded by the seizure locus. 1997, Pubmed
Tristani-Firouzi, Voltage-dependent inactivation of the human K+ channel KvLQT1 is eliminated by association with minimal K+ channel (minK) subunits. 1998, Pubmed , Xenbase
Trudeau, HERG, a human inward rectifier in the voltage-gated potassium channel family. 1995, Pubmed
Wang, A quantitative analysis of the activation and inactivation kinetics of HERG expressed in Xenopus oocytes. 1997, Pubmed , Xenbase
Warmke, A family of potassium channel genes related to eag in Drosophila and mammals. 1994, Pubmed
Warmke, A distinct potassium channel polypeptide encoded by the Drosophila eag locus. 1991, Pubmed
Zhou, Chemistry of ion coordination and hydration revealed by a K+ channel-Fab complex at 2.0 A resolution. 2001, Pubmed
Zou, A mutation in the pore region of HERG K+ channels expressed in Xenopus oocytes reduces rectification by shifting the voltage dependence of inactivation. 1998, Pubmed , Xenbase
