An alpha-carbon template for the transmembrane helices in the rhodopsin family of G-protein-coupled receptors

被引:599
作者
Baldwin, JM
Schertler, GFX
Unger, VM
机构
[1] MRC Laboratory of Molecular Biology, Medical Research Council Centre, Cambridge, CB2 2QH, Hills Road
[2] Scripps Research Institute, Department of Cell Biology, San Diego, CA 92037
关键词
G-protein-coupled receptor; rhodopsin; sequence analysis; structure prediction;
D O I
10.1006/jmbi.1997.1240
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 model for the alpha-carbon positions in the seven transmembrane helices in the rhodopsin family of G-protein-coupled receptors is presented. The model incorporates structural information derived from the analysis of similar to 500 sequences in this family. The location, relative to the centre of the lipid bilayer, of each of the seven helical sequence segments and their probable lengths are deduced from sequence analysis, along with the orientation, relative to the centre of the helix bundle, of each helical segment around its axis. The packing of the helices in the model is guided by the density in a three-dimensional map of frog rhodopsin determined by electron cryo-microscopy. The model suggests which of the residues that are highly conserved in this family of receptors interact with each other. Helices III, V and VI are predicted to protrude more than the others from the central lipid core towards the aqueous phase on the intracellular side of the membrane. This feature could be a property of the receptor structure in some but not all of the conformations that it adopts, since recent studies suggest that relative movement occurs between these helices on photoactivation of rhodopsin. Results from other techniques, including the creation of metal-binding sites and disulphide bridges, site-directed spin-labelling studies, the substituted-cysteine accessibility method and other site-directed mutagenesis studies, are discussed in terms of the model. (C) 1997 Academic Press Limited.
引用
收藏
页码:144 / 164
页数:21
相关论文
共 67 条
[1]   Structural features and light-dependent changes in the cytoplasmic interhelical E-F loop region of rhodopsin: A site-directed spin-labeling study [J].
Altenbach, C ;
Yang, K ;
Farrens, DL ;
Farahbakhsh, ZT ;
Khorana, HG ;
Hubbell, WL .
BIOCHEMISTRY, 1996, 35 (38) :12470-12478
[2]   ATOMIC CO-ORDINATES FRO AN ALPHA-HELIX - REFINEMENT OF CRYSTAL STRUCTURE OF ALPHA-POLY-L-ALANINE [J].
ARNOTT, S ;
WONACOTT, AJ .
JOURNAL OF MOLECULAR BIOLOGY, 1966, 21 (02) :371-&
[3]   MOLECULAR DETERMINANTS OF HUMAN RED/GREEN COLOR DISCRIMINATION [J].
ASENJO, AB ;
RIM, J ;
OPRIAN, DD .
NEURON, 1994, 12 (05) :1131-1138
[4]   STRUCTURE AND FUNCTION OF RECEPTORS COUPLED TO G-PROTEINS [J].
BALDWIN, JM .
CURRENT OPINION IN CELL BIOLOGY, 1994, 6 (02) :180-190
[5]   THE PROBABLE ARRANGEMENT OF THE HELICES IN G-PROTEIN-COUPLED RECEPTORS [J].
BALDWIN, JM .
EMBO JOURNAL, 1993, 12 (04) :1693-1703
[6]  
BLIN N, 1995, J BIOL CHEM, V270, P17711
[7]   STRUCTURE AND FUNCTION IN RHODOPSIN .6. REPLACEMENT BY ALANINE OF CYSTEINE RESIDUE-110 AND RESIDUE-187, COMPONENTS OF A CONSERVED DISULFIDE BOND IN RHODOPSIN, AFFECTS THE LIGHT-ACTIVATED METARHODOPSIN-II STATE [J].
DAVIDSON, FF ;
LOEWEN, PC ;
KHORANA, HG .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1994, 91 (09) :4029-4033
[8]   Projection structure of an invertebrate rhodopsin [J].
Davies, A ;
Schertler, GFX ;
Gowan, BE ;
Saibil, HR .
JOURNAL OF STRUCTURAL BIOLOGY, 1996, 117 (01) :36-44
[9]   CONVERSION OF ANTAGONIST-BINDING SITE TO METAL-ION SITE IN THE TACHYKININ NK-1 RECEPTOR [J].
ELLING, CE ;
NIELSEN, SM ;
SCHWARTZ, TW .
NATURE, 1995, 374 (6517) :74-77
[10]   Connectivity and orientation of the seven helical bundle in the tachykinin NK-1 receptor probed by zinc site engineering [J].
Elling, CE ;
Schwartz, TW .
EMBO JOURNAL, 1996, 15 (22) :6213-6219