Constitutive activation of the angiotensin II type 1 receptor alters the spatial proximity of transmembrane 7 to the ligand-binding pocket

被引:55
作者
Boucard, AA [1 ]
Roy, M [1 ]
Beaulieu, ME [1 ]
Lavigne, P [1 ]
Escher, E [1 ]
Guillemette, G [1 ]
Leduc, R [1 ]
机构
[1] Univ Sherbrooke, Fac Med, Dept Pharmacol, Sherbrooke, PQ J1H 5N4, Canada
关键词
D O I
10.1074/jbc.M305952200
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
Activation of G protein-coupled receptors by agonists involves significant movement of transmembrane domains (TM) following binding of agonist. The underlying structural mechanism by which receptor activation takes place is largely unknown but can be inferred by detecting variability within the environment of the ligand-binding pocket, which constitutes a water-accessible crevice surrounded by the seven TM helices. Using the substituted cysteine accessibility method, we initially identified those residues within the seventh transmembrane domain (TM7) of wild type angiotensin II type 1 (AT(1)) receptor that contribute to forming the binding site pocket. We have substituted successively TM7 residues ranging from Ile(276) to Tyr(302) to cysteine. Treatment of A277C, V280C, T282C, A283C, I286C, A291C, and F301C mutant receptors with the charged sulfhydryl-specific alkylating agent MTSEA significantly inhibited ligand binding, which suggests that these residues orient themselves within the water-accessible binding pocket of the AT(1) receptor. Interestingly, this pattern of acquired MTSEA sensitivity was greatly reduced for TM7 reporter cysteines engineered in a constitutively active mutant of the AT(1) receptor. Our data suggest that upon activation, TM7 of the AT(1) receptor goes through a pattern of helical movements that results in its distancing from the binding pocket per se. These studies support accumulating evidence whereby elements of TM7 of class A GPCRs promote activation of the receptor through structural rearrangements.
引用
收藏
页码:36628 / 36636
页数:9
相关论文
共 41 条
[1]   Structure and function in rhodopsin: Mapping light-dependent changes in distance between residue 316 in helix 8 and residues in the sequence 60-75, covering the cytoplasmic end of helices TM1 and TM2 and their connection loop CL1 [J].
Altenbach, C ;
Klein-Seetharaman, J ;
Cai, KW ;
Khorana, HG ;
Hubbell, WL .
BIOCHEMISTRY, 2001, 40 (51) :15493-15500
[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]  
Ballesteros J.A., 1995, Methods in Neurosciences, V25, P366, DOI [DOI 10.1016/S1043-9471(05)80049-7, 10.1016/S1043-9471(05)80049-7]
[4]   Photolabeling identifies position 172 of the human AT1 receptor as a ligand contact point:: Receptor-bound angiotensin II adopts an extended structure [J].
Boucard, AA ;
Wilkes, BC ;
Laporte, SA ;
Escher, E ;
Guillemette, G ;
Leduc, R .
BIOCHEMISTRY, 2000, 39 (32) :9662-9670
[5]   Photolabelling the rat urotensin II/GPR14 receptor identifies a ligand-binding site in the fourth transmembrane domain [J].
Boucard, AA ;
Sauvé, SS ;
Guillemette, G ;
Escher, E ;
Leduc, R .
BIOCHEMICAL JOURNAL, 2003, 370 :829-838
[6]   STRUCTURE AND ENERGETICS OF LIGAND-BINDING TO PROTEINS - ESCHERICHIA-COLI DIHYDROFOLATE REDUCTASE TRIMETHOPRIM, A DRUG-RECEPTOR SYSTEM [J].
DAUBEROSGUTHORPE, P ;
ROBERTS, VA ;
OSGUTHORPE, DJ ;
WOLFF, J ;
GENEST, M ;
HAGLER, AT .
PROTEINS-STRUCTURE FUNCTION AND GENETICS, 1988, 4 (01) :31-47
[7]   Determination of amino acid residues that are accessible from the ligand binding crevice in the seventh transmembrane-spanning region of the human A1 adenosine receptor [J].
Dawson, ES ;
Wells, JN .
MOLECULAR PHARMACOLOGY, 2001, 59 (05) :1187-1195
[8]  
de Gasparo M, 2000, PHARMACOL REV, V52, P415
[9]   Conformational changes in rhodopsin - Movement of helix F detected by site-specific chemical labeling and fluorescence spectroscopy [J].
Dunham, TD ;
Farrens, DL .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1999, 274 (03) :1683-1690
[10]   Requirement of rigid-body motion of transmembrane helices for light activation of rhodopsin [J].
Farrens, DL ;
Altenbach, C ;
Yang, K ;
Hubbell, WL ;
Khorana, HG .
SCIENCE, 1996, 274 (5288) :768-770