Molecular modeling of local anesthetic drug binding by voltage-gated sodium channels

被引:150
作者
Lipkind, GM
Fozzard, HA
机构
[1] Univ Chicago, Dept Biochem & Mol Biol, Chicago, IL 60637 USA
[2] Univ Chicago, Dept Med, Chicago, IL 60637 USA
关键词
D O I
10.1124/mol.105.014803
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
Voltage-gated sodium (Na+) channels are targets for local anesthetic ( LA) drugs that bind in the inner pore of the channel with affinities related to the channel gating states. Our core model of the sodium channel ( P loops and S5 and S6 segments from each of the four domains) was closed because it was developed using coordinates from the KcsA channel crystallographic structure. We developed a model of the activated, open channel based on the structure of the open MthK channel, which was characterized by bends at the S6 glycine or serine residues. This created a conformation that allowed energetically appropriate docking of the LA drugs. The alkylamino head of ionizable LA molecules was docked closer to the selectivity filter and in association with Phe-1579 of IVS6 and Leu-1280 of IIIS6 (Nav1.4), and the aromatic ring interacted with Tyr-1586 of IVS6 and Asn-434 of IS6. Comparison of multiple LA drugs showed relative binding affinities in the model consistent with experimental studies. The ionizable LA alkylamino heads interact primarily by van der Waals forces that position the charge so as to create a positive electrostatic barrier for cation permeation. Permanently uncharged benzocaine could be docked in the closed conformation as well, stabilizing the closed conformation. The structurally different anticonvulsant lamotrigine and one of its derivatives have a binding site that fully overlaps with that of the LA drugs. The open, activated channel creates the high-affinity binding site for these sodium channel blocker drugs, and block may be mainly electrostatic.
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页码:1611 / 1622
页数:12
相关论文
共 52 条
[1]   MOLECULAR MECHANISMS OF LOCAL-ANESTHESIA - A REVIEW [J].
BUTTERWORTH, JF ;
STRICHARTZ, GR .
ANESTHESIOLOGY, 1990, 72 (04) :711-734
[2]  
CATTERALL W, 1996, PHARMACOL BASIS THER, P331
[3]   From ionic currents to molecular mechanisms: The structure and function of voltage-gated sodium channels [J].
Catterall, WA .
NEURON, 2000, 26 (01) :13-25
[4]  
CATTERALL WA, 2003, PHYSIOL REV, V76, P887
[5]   Voltage-gated sodium channels as therapeutic targets [J].
Clare, JJ ;
Tate, SN ;
Nobbs, M ;
Romanos, MA .
DRUG DISCOVERY TODAY, 2000, 5 (11) :506-520
[6]  
Courtney K.R., 1987, HDB EXPT PHARM, P53
[7]   Optimal requirements for high affinity and use-dependent block of skeletal muscle sodium channel by N-benzyl analogs of tocainide-like compounds [J].
De Luca, A ;
Talon, S ;
De Bellis, M ;
Desaphy, JF ;
Lentini, G ;
Corbo, F ;
Scilimati, A ;
Franchini, C ;
Tortorella, V ;
Camerino, DC .
MOLECULAR PHARMACOLOGY, 2003, 64 (04) :932-945
[8]   ACETYLCHOLINE BINDING BY A SYNTHETIC RECEPTOR - IMPLICATIONS FOR BIOLOGICAL RECOGNITION [J].
DOUGHERTY, DA ;
STAUFFER, DA .
SCIENCE, 1990, 250 (4987) :1558-1560
[9]   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
[10]   μ-Conotoxin GIIIA interactions with the voltage-gated Na+ channel predict a clockwise arrangement of the domains [J].
Dudley, SC ;
Chang, N ;
Hall, J ;
Lipkind, G ;
Fozzard, HA ;
French, RJ .
JOURNAL OF GENERAL PHYSIOLOGY, 2000, 116 (05) :679-689