Structure, Function, and Modification of the Voltage Sensor in Voltage-Gated Ion Channels

被引:102
作者
Borjesson, Sara I. [1 ]
Elinder, Fredrik [1 ]
机构
[1] Linkoping Univ, Div Cell Biol, Dept Clin & Expt Med, SE-58185 Linkoping, Sweden
基金
瑞典研究理事会;
关键词
Kv channel; Voltage sensor domain; Modulation; Gating; Excitability; S4;
D O I
10.1007/s12013-008-9032-5
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Voltage-gated ion channels are crucial for both neuronal and cardiac excitability. Decades of research have begun to unravel the intriguing machinery behind voltage sensitivity. Although the details regarding the arrangement and movement in the voltage-sensor domain are still debated, consensus is slowly emerging. There are three competing conceptual models: the helical-screw, the transporter, and the paddle model. In this review we explore the structure of the activated voltage-sensor domain based on the recent X-ray structure of a chimera between Kv1.2 and Kv2.1. We also present a model for the closed state. From this we conclude that upon depolarization the voltage sensor S4 moves similar to 13 angstrom outwards and rotates similar to 180 degrees, thus consistent with the helical-screw model. S4 also moves relative to S3b which is not consistent with the paddle model. One interesting feature of the voltage sensor is that it partially faces the lipid bilayer and therefore can interact both with the membrane itself and with physiological and pharmacological molecules reaching the channel from the membrane. This type of channel modulation is discussed together with other mechanisms for how voltage-sensitivity is modified. Small effects on voltage-sensitivity can have profound effects on excitability. Therefore, medical drugs designed to alter the voltage dependence offer an interesting way to regulate excitability.
引用
收藏
页码:149 / 174
页数:26
相关论文
共 262 条
[41]   Distinct primary structures of the major peptide toxins from the venom of the spider Macrothele gigas that bind to sites 3 and 4 in the sodium channel [J].
Corzo, G ;
Gilles, N ;
Satake, H ;
Villegas, E ;
Dai, L ;
Nakajima, T ;
Haupt, J .
FEBS LETTERS, 2003, 547 (1-3) :43-50
[42]   CNG and HCN channels: Two peas, one pod [J].
Craven, KB ;
Zagotta, WN .
ANNUAL REVIEW OF PHYSIOLOGY, 2006, 68 :375-401
[43]   Molecular architecture of the KvAP voltage-dependent K+ channel in a lipid bilayer [J].
Cuello, LG ;
Cortes, DM ;
Perozo, E .
SCIENCE, 2004, 306 (5695) :491-495
[44]  
Cushman SJ, 2000, NAT STRUCT BIOL, V7, P403
[45]   Regulation of ion channels by protein tyrosine phosphorylation [J].
Davis, MJ ;
Wu, X ;
Nurkiewicz, TR ;
Kawasaki, J ;
Gui, PC ;
Hill, MA ;
Wilson, E .
AMERICAN JOURNAL OF PHYSIOLOGY-HEART AND CIRCULATORY PHYSIOLOGY, 2001, 281 (05) :H1835-H1862
[46]   APETx1, a new toxin from the sea anemone Anthopleura elegantissima, blocks voltage-gated human ether-a-go-go related gene potassium channels [J].
Diochot, S ;
Loret, E ;
Bruhn, T ;
Béress, L ;
Lazdunski, M .
MOLECULAR PHARMACOLOGY, 2003, 64 (01) :59-69
[47]   A dipeptidyl aminopeptidase-like protein remodels gating charge dynamics in Kv4.2 channels [J].
Dougherty, Kevin ;
Covarrubias, Manuel .
JOURNAL OF GENERAL PHYSIOLOGY, 2006, 128 (06) :745-753
[48]   The structure of the potassium channel:: Molecular basis of K+ conduction and selectivity [J].
Doyle, DA ;
Cabral, JM ;
Pfuetzner, RA ;
Kuo, AL ;
Gulbis, JM ;
Cohen, SL ;
Chait, BT ;
MacKinnon, R .
SCIENCE, 1998, 280 (5360) :69-77
[49]   Models of the structure and voltage-gating mechanism of the shaker K+ channel [J].
Durell, SR ;
Shrivastava, IH ;
Guy, HR .
BIOPHYSICAL JOURNAL, 2004, 87 (04) :2116-2130
[50]   Structural models of the transmembrane region of voltage-gated and other K+ channels in open, closed, and inactivated conformations [J].
Durell, SR ;
Hao, YL ;
Guy, HR .
JOURNAL OF STRUCTURAL BIOLOGY, 1998, 121 (02) :263-284