MODELING OF AGONIST BINDING TO THE LIGAND-GATED ION CHANNEL SUPERFAMILY OF RECEPTORS

被引:41
作者
COCKCROFT, VB
OSGUTHORPE, DJ
BARNARD, EA
LUNT, GG
机构
[1] UNIV BATH, DEPT BIOCHEM, BATH BA2 7AY, AVON, ENGLAND
[2] UNIV BATH, MOLEC GRAPH UNIT, BATH BA2 7AY, AVON, ENGLAND
[3] MRC, MOLEC NEUROBIOL UNIT, CAMBRIDGE CB2 2QH, ENGLAND
关键词
LGIC SUPERFAMILY; PROTO-BINDING SITE; CYS-LOOP MOTIF; DOCKING MODEL; ANIONIC SITE; SPECIFICITY RESIDUE;
D O I
10.1002/prot.340080412
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
A generalized model is presented of agonist binding to ligand-gated ion channels (LGICs). Broad similarity in the structure of agonists suggests that the binding sites of LGICs may have evolved from a protobinding site. Aligned sequence data identified as a candidate for such a site a highly conserved 15 residue stretch of primary structure in the N-terminal extracellular region of all known LGIC subunits. We modeled this subregion, termed the cys-loop, as a rigid, amphiphilic beta-hairpin and propose that it may form a major determinant of a conserved structural binding cleft. In the model of the binding complex (1) an invariant aspartate residue at position 11 of the cys-loop is the anionic site interacting with the positively charged amine group of agonists, (2) a local dipole within the pi-electron system of agonists is favorably oriented in the electrostatic field of the invariant aspartate, (3) the epsilon-ring-proton of a conserved aromatic residue at the turn of the cys-loop interacts orthogonally with the agonist pi-electron density at its electronegative center, and (4) selective recognition is partly a result of the type of amino acid residue at position 6 of the cys-loop. Additionally, the formation of a hydrogen bond between the electronegative atom of the pi-electron system of agonist and a complementary group in the receptor may be important in the high-affinity binding of agonists.
引用
收藏
页码:386 / 397
页数:12
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