Pore structure influences gating properties of the T-type Ca2+ channel α1G

被引:38
作者
Talavera, K
Janssens, A
Klugbauer, N
Droogmans, G
Nilius, B
机构
[1] Katholieke Univ Leuven, Fysiol Lab, B-3000 Louvain, Belgium
[2] Tech Univ Munich, Inst Pharmakol & Toxikol, D-80802 Munich, Germany
关键词
PH; activation; selectivity filter; pore mutant; Ca(V)3.1; SHAKER POTASSIUM CHANNELS; CALCIUM-CHANNEL; SODIUM-CHANNEL; K+ CHANNEL; SELECTIVITY FILTER; INACTIVATION; ION; ACTIVATION; MUTATIONS; PERMEATION;
D O I
10.1085/jgp.200308794
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
The selectivity filter of all known T-type Ca2+ channels is built by an arrangement of two glutamate and two aspartate residues, each one located in the P-loops of domains I-IV of the alpha(1), subunit (EEDD locus). The mutations of the aspartate residues to glutamate induce changes in the conduction properties, enhance Cd2+ and proton affinities, and modify the activation curve of the channel. Here we further analyze the role of the selectivity filter in the gating mechanisms of T-type channels by comparing the kinetic properties of the alpha(1G) subunit (Ca(V)3.1) to those of pore mutants containing aspartate-to-glutamate substitution in domains III (EEED) or IV (EEDE). The change of the extracellular pH induced similar effects on the activation properties of alpha(1G) and both pore mutants, indicating that the larger affinity of the mutant channels for protons is not the cause of the gating modifications. Both mutants showed alterations in several gating properties with respect to alpha(1G), i.e., faster macroscopic inactivation in the voltage range from -10 to 50 mV, positive voltage shift and decrease in the voltage sensitivity of the time constants of activation and deactivation, decrease of the voltage sensitivity of the steady-state inactivation, and faster recovery from inactivation for long repolarization periods. Kinetic modeling suggests that aspartate-to-glutamate mutations in the EEDD locus Of alpha(1G) modify the movement of the gating charges and alter the rate of several gating transitions. These changes are independent of the alterations of the selectivity properties and channel protonation.
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收藏
页码:529 / 540
页数:12
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