The Cys-loop superfamily of ligand-gated ion channels: the impact of receptor structure on function

被引:145
作者
Connolly, CN [1 ]
Wafford, KA
机构
[1] Univ Dundee, Ninewells Med Sci, Div Pathol & Neurosci, Dundee DD1 9SY, Scotland
[2] Merck Sharp & Dohme Res Labs, Ctr Res Neurosci, Harlow CM20 2QR, Essex, England
关键词
conductance; gating; ion channel molecular structure; ligand-gated ion channel; modulation;
D O I
10.1042/BST0320529
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
The Cys-loop receptors constitute an important superfamily of LGICs (ligand-gated ion channels) comprising receptors for acetylcholine, 5-HT3 (5-hydroxytryptamine; S-HT3 receptors), glycine and GABA (gamma-amino-butyric acid; GABA(A) receptors). A vast knowledge of the structure of the Cys-loop superfamily and its impact on channel function have been accrued over the last few years, leading to exciting new proposals on how ion channels open and close in response to agonist binding. Channel opening is initiated by the extracellular association of agonists to discrete binding pockets, leading to dramatic conformational changes, culminating in the opening of a central ion pore. The importance of channel structure is exemplified in the allosteric modulation of channel function by the binding of other molecules to distinct sites on the channel, which exerts an additional level of control on their function. The subsequent conformational changes (gating) lead to channel opening and ion transport. Following channel pore opening, ion selectivity is determined by receptor structure in, and around, the ion pore. As a final level of control, cytoplasmic determinants control the magnitude (conductance) of ion flow into the cell. Thus the Cys-loop receptors are complex molecular motors, with moving parts, which can transduce extracellular signals across the plasma membrane. once the full mechanical motions involved are understood, it may be possible to design sophisticated therapeutic agents to modulate their activity, or at least be able to throw a molecular spanner into the works!
引用
收藏
页码:529 / 534
页数:6
相关论文
共 77 条
[1]   Role of charged residues in coupling ligand binding and channel activation in the extracellular domain of the glycine receptor [J].
Absalom, NL ;
Lewis, TM ;
Kaplan, W ;
Pierce, KD ;
Schofield, PR .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2003, 278 (50) :50151-50157
[2]   ACETYLCHOLINE-RECEPTOR CHANNEL STRUCTURE PROBED IN CYSTEINE-SUBSTITUTION MUTANTS [J].
AKABAS, MH ;
STAUFFER, DA ;
XU, M ;
KARLIN, A .
SCIENCE, 1992, 258 (5080) :307-310
[3]   GABA(A) RECEPTOR NEEDS 2 HOMOLOGOUS DOMAINS OF THE BETA-SUBUNIT FOR ACTIVATION BY GABA BUT NOT BY PENTOBARBITAL [J].
AMIN, J ;
WEISS, DS .
NATURE, 1993, 366 (6455) :565-569
[4]  
ASCROFT FM, 2000, ION CHANNELS DIS
[5]   First genetic evidence of GABAA receptor dysfunction in epilepsy:: a mutation in the γ2-subunit gene [J].
Baulac, S ;
Huberfeld, G ;
Gourfinkel-An, I ;
Mitropoulou, G ;
Beranger, A ;
Prud'homme, JF ;
Baulac, M ;
Brice, A ;
Bruzzone, R ;
LeGuern, E .
NATURE GENETICS, 2001, 28 (01) :46-48
[6]   EXP-1 is an excitatory GABA-gated cation channel [J].
Beg, AA ;
Jorgensen, EM .
NATURE NEUROSCIENCE, 2003, 6 (11) :1145-1152
[7]  
Bianchi MT, 2002, J NEUROSCI, V22, P5321
[8]   Analysis of the ligand binding site of the 5-HT3 receptor using site directed mutagenesis: Importance of glutamate 106 [J].
Boess, FG ;
Steward, LJ ;
Steele, JA ;
Liu, D ;
Reid, J ;
Glencorse, TA ;
Martin, IL .
NEUROPHARMACOLOGY, 1997, 36 (4-5) :637-647
[9]  
Boileau AJ, 1999, J NEUROSCI, V19, P10213
[10]  
Boileau AJ, 1999, J NEUROSCI, V19, P4847