Identification of the critical residues of bradykinin receptor B1 for interaction with the kinins guided by site-directed mutagenesis and molecular modeling

被引:18
|
作者
Ha, Sookhee N.
Hey, Pat J.
Ransom, Rick W.
Bock, Mark G.
Su, Dai-Shi
Murphy, Kathryn L.
Chang, Ray
Chen, Tsing-Bau
Pettibone, Douglas
Hess, J. Fred
机构
[1] Merck Res Labs, Basic Chem, Rahway, NJ 07065 USA
[2] Merck Res Labs, Dept Med Chem & Neurosci, West Point, PA 19486 USA
[3] Merck Res Labs, Dept Med Chem, West Point, PA 19486 USA
关键词
D O I
10.1021/bi060673f
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
We report the critical residues for the interaction of the kinins with human bradykinin receptor 1 (B1) using site- directed mutagenesis in conjunction with molecular modeling of the binding modes of the kinins in the homology model of the B1 receptor. Mutation of Lys(118) in transmembrane (TM) helix 3, Ala(270) in TM6, and Leu(294) in TM7 causes a significant decrease in the affinity for the peptide agonists des- Arg(10)kallidin (KD) and des- Arg(9)BK but not the peptide antagonist des- Arg(10)Leu(9)KD. In contrast, mutations in TM2, TM3, TM6, and TM7 cause a significant decrease in the affinity for both the peptide agonists and the antagonist. These data indicate that the B1 bradykinin binding pocket for agonists and antagonists is similar, but the manners in which they interact with the receptor do not completely overlap. Therefore, there is a potential to influence the receptor's ligand selectivity.
引用
收藏
页码:14355 / 14361
页数:7
相关论文
共 50 条
  • [31] Site-directed mutagenesis of the TRPV1 reveals amino acid residues crucial for receptor gating
    Lubova, K.
    Chugunov, A.
    Andreev, Y.
    FEBS OPEN BIO, 2018, 8 : 379 - 379
  • [32] Molecular Modeling and Site-Directed Mutagenesis Reveal Essential Residues for Catalysis in a Prokaryote-Type Aspartate Aminotransferase
    de la Torre, Fernando
    Moya-Garcia, Aurelio A.
    Suarez, Maria-Fernanda
    Rodriguez-Caso, Carlos
    Canas, Rafael A.
    Sanchez-Jimenez, Francisca
    Canovas, Francisco M.
    PLANT PHYSIOLOGY, 2009, 149 (04) : 1648 - 1660
  • [33] IDENTIFICATION OF ESSENTIAL RESIDUES IN POTYVIRUS PROTEINASE HC-PRO BY SITE-DIRECTED MUTAGENESIS
    OH, CS
    CARRINGTON, JC
    VIROLOGY, 1989, 173 (02) : 692 - 699
  • [34] Identification of residues involved in v-Src substrate recognition by site-directed mutagenesis
    Yokoyama, N
    Miller, WT
    FEBS LETTERS, 1999, 456 (03) : 403 - 408
  • [35] Site-directed mutagenesis of rabbit proacrosin - Identification of residues involved in zona pellucida binding
    Richardson, RT
    ORand, MG
    JOURNAL OF BIOLOGICAL CHEMISTRY, 1996, 271 (39) : 24069 - 24074
  • [36] IDENTIFICATION OF ACTIVE-SITE RESIDUES IN PYROPHOSPHATE-DEPENDENT PHOSPHOFRUCTO-1-KINASE BY SITE-DIRECTED MUTAGENESIS
    GREEN, PC
    TRIPATHI, RL
    KEMP, RG
    JOURNAL OF BIOLOGICAL CHEMISTRY, 1993, 268 (07) : 5085 - 5088
  • [37] GALACTOSE-1-PHOSPHATE URIDYLYLTRANSFERASE - IDENTIFICATION OF HISTIDINE-164 AND HISTIDINE-166 AS CRITICAL RESIDUES BY SITE-DIRECTED MUTAGENESIS
    FIELD, TL
    REZNIKOFF, WS
    FREY, PA
    BIOCHEMISTRY, 1989, 28 (05) : 2094 - 2099
  • [38] The unique ligand-binding pocket for the human prostacyclin receptor - Site-directed mutagenesis and molecular modeling
    Stitham, J
    Stojanovic, A
    Merenick, BL
    O'Hara, KA
    Hwa, J
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2003, 278 (06) : 4250 - 4257
  • [39] Elaboration of an interaction model between zolpidem and the ω1 modulatory site of GABAA receptor using site-directed mutagenesis
    Olivier, A
    Renard, S
    Even, Y
    Besnard, F
    Graham, D
    Sevrin, M
    George, P
    MOLECULAR MODELING AND PREDICTION OF BIOACTIVITY, 2000, : 484 - 485
  • [40] Molecular anatomy of the human VIP1 receptor: Site-directed mutagenesis and construction of chimeras
    Laburthe, M
    Couvineau, A
    Nicole, P
    Gaudin, P
    Du, K
    Maoret, JJ
    NAUNYN-SCHMIEDEBERGS ARCHIVES OF PHARMACOLOGY, 1998, 358 (01) : R569 - R569