Receptor-mediated activation of heterotrimeric G-proteins: Current structural insights

被引:105
作者
Johnston, Christopher A. [1 ]
Siderovski, David P. [1 ]
机构
[1] Univ N Carolina, Dept Pharmacol, Chapel Hill, NC 27599 USA
关键词
D O I
10.1124/mol.107.034348
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
G-protein-coupled receptors (GPCRs) serve as catalytic activators of heterotrimeric G-proteins (G alpha beta gamma) by exchanging GTP for the bound GDP on the G alpha subunit. This guanine nucleotide exchange factor activity of GPCRs is the initial step in the G-protein cycle and determines the onset of various intracellular signaling pathways that govern critical physiological responses to extracellular cues. Although the structural basis for many steps in the G-protein nucleotide cycle have been made clear over the past decade, the precise mechanism for receptor-mediated G-protein activation remains incompletely defined. Given that these receptors have historically represented a set of rich drug targets, a more complete understanding of their mechanism of action should provide further avenues for drug discovery. Several models have been proposed to explain the communication between activated GPCRs and G alpha beta gamma leading to the structural changes required for guanine nucleotide exchange. This review is focused on the structural biology of G-protein signal transduction with an emphasis on the current hypotheses regarding G alpha beta gamma activation. We highlight several recent results shedding new light on the structural changes in G alpha that may underlie GDP release.
引用
收藏
页码:219 / 230
页数:12
相关论文
共 109 条
[1]   The receptor-bound "empty pocket" state of the heterotrimeric G-protein α-subunit is conformationally dynamic [J].
Abdulaev, Najmoutin G. ;
Ngo, Tony ;
Ramon, Eva ;
Brabazon, Danielle M. ;
Marino, John P. ;
Ridge, Kevin D. .
BIOCHEMISTRY, 2006, 45 (43) :12986-12997
[2]   Structure and function in rhodopsin: Mapping light-dependent changes in distance between residue 65 in helix TM1 and residues in the sequence 306-319 at the cytoplasmic end of helix TM7 and in helix H8 [J].
Altenbach, C ;
Cai, KW ;
Klein-Seetharaman, J ;
Khorana, FG ;
Hubbell, WL .
BIOCHEMISTRY, 2001, 40 (51) :15483-15492
[3]   Dimerization: An emerging concept for G protein-coupled receptor ontogeny and function [J].
Angers, S ;
Salahpour, A ;
Bouvier, M .
ANNUAL REVIEW OF PHARMACOLOGY AND TOXICOLOGY, 2002, 42 :409-435
[4]   Activation of the β2-adrenergic receptor involves disruption of an ionic lock between the cytoplasmic ends of transmembrane segments 3 and 6 [J].
Ballesteros, JA ;
Jensen, AD ;
Liapakis, G ;
Rasmussen, SGF ;
Shi, L ;
Gether, U ;
Javitch, JA .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2001, 276 (31) :29171-29177
[5]   The GTPase-activating protein RGS4 stabilizes the transition state for nucleotide hydrolysis [J].
Berman, DM ;
Kozasa, T ;
Gilman, AG .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1996, 271 (44) :27209-27212
[6]   Structural aspects of heterotrimeric G-protein signaling [J].
Bohm, A ;
Gaudet, R ;
Sigler, PB .
CURRENT OPINION IN BIOTECHNOLOGY, 1997, 8 (04) :480-487
[7]   How receptors talk to trimeric G proteins [J].
Bourne, HR .
CURRENT OPINION IN CELL BIOLOGY, 1997, 9 (02) :134-142
[8]   Monomeric G-protein-coupled receptor as a functional unit [J].
Chabre, M ;
le Maire, M .
BIOCHEMISTRY, 2005, 44 (27) :9395-9403
[9]   Structure of the p115RhoGEF rgRGS domain-Gα13/i1 chimera complex suggests convergent evolution of a GTPase activator [J].
Chen, Z ;
Singer, WD ;
Sternweis, PC ;
Sprang, SR .
NATURE STRUCTURAL & MOLECULAR BIOLOGY, 2005, 12 (02) :191-197
[10]   GEFs: structural basis for their activation of small GTP-binding proteins [J].
Cherfils, J ;
Chardin, P .
TRENDS IN BIOCHEMICAL SCIENCES, 1999, 24 (08) :306-311