Functional role of the "Ionic Lock" - An interhelical hydrogen-bond network in family a heptahelical receptors

被引:135
作者
Vogel, Reiner [1 ]
Mahalingam, Mohana [1 ]
Luedke, Steffen [1 ]
Huber, Thomas [2 ]
Siebert, Friedrich [1 ]
Sakmar, Thomas P. [2 ]
机构
[1] Univ Freiburg, Inst Mol Med & Cell Res, Biophys Sect, D-79104 Freiburg, Germany
[2] Rockefeller Univ, Lab Mol Biol & Biochem, New York, NY 10065 USA
关键词
infrared spectroscopy; membrane protein; visual pigment; G protein-coupled receptor; signal transduction;
D O I
10.1016/j.jmb.2008.05.022
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 family A G-protein-coupled receptors involves a rearrangement of a conserved interhelical cytoplasmic hydrogen bond network between the E(D)RY motif on transmembrane helix 3 (H3) and residues on H6, which is commonly termed the cytoplasmic "ionic lock." Glu134(3.49) of the E(D)RY motif also forms an intrahelical salt bridge with neighboring Arg135(3.50) in the dark-state crystal structure of rhodopsin. We examined the roles of Glu134(3.49) and Arg135(3.50) on H3 and Glu247(6.30) and Glu249(6.32) on H6 on the activation of rhodopsin using Fourier transform infrared spectroscopy of wild-type and mutant pigments reconstituted into lipid membranes. Activation of rhodopsin is pH-dependent with proton uptake during the transition from the inactive Meta I to the active Meta H state. Glu134(3.49) of the ERY motif is identified as the proton-accepting group, using the Fourier transform infrared protonation signature and the absence of a pH dependence of activation in the E134Q mutant. Neutralization of Arg135(3.50) similarly leads to pH-independent receptor activation, but with structural alterations in the Meta 11 state. Neutralization of Glu247(6.30) and Glu249(6.32) on H6, which are involved in interhelical interactions with H3 and H7, respectively, led to a shift toward Meta II in the E247Q and E249Q mutants while retaining the pH sensitivity of the equilibrium. Disruption of the interhelical interaction of Glu247(6.30) and Glu249(6.32) on H6 with H3 and H7 plays its role during receptor activation, but neutralization of the intrahelical salt bridge between Glu134(3.49) and Arg135(3.50) is considerably more critical for shifting the photoproduct equilibrium to the active conformation. These conclusions are discussed in the context of recent structural data of the beta(2)-adrenergic receptor. (C) 2008 Published by Elsevier Ltd.
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页码:648 / 655
页数:8
相关论文
共 42 条
[31]   FOURIER-TRANSFORM INFRARED DIFFERENCE SPECTROSCOPY OF RHODOPSIN MUTANTS - LIGHT ACTIVATION OF RHODOPSIN CAUSES HYDROGEN-BONDING CHANGE IN RESIDUE ASPARTIC ACID-83 DURING META-II FORMATION [J].
RATH, P ;
DECALUWE, LLJ ;
BOVEEGEURTS, PHM ;
DEGRIP, WJ ;
ROTHSCHILD, KJ .
BIOCHEMISTRY, 1993, 32 (39) :10277-10282
[32]   GPCR engineering yields high-resolution structural insights into β2-adrenergic receptor function [J].
Rosenbaum, Daniel M. ;
Cherezov, Vadim ;
Hanson, Michael A. ;
Rasmussen, Soren G. F. ;
Thian, Foon Sun ;
Kobilka, Tong Sun ;
Choi, Hee-Jung ;
Yao, Xiao-Jie ;
Weis, William I. ;
Stevens, Raymond C. ;
Kobilka, Brian K. .
SCIENCE, 2007, 318 (5854) :1266-1273
[33]   Electron crystallography reveals the structure of metarhodopsin I [J].
Ruprecht, JJ ;
Mielke, T ;
Vogel, R ;
Villa, C ;
Schertler, GFX .
EMBO JOURNAL, 2004, 23 (18) :3609-3620
[34]   Evidence for a model of agonist-induced activation of 5-hydroxytryptamine 2A serotonin receptors that involves the disruption of a strong ionic interaction between helices 3 and 6 [J].
Shapiro, DA ;
Kristiansen, K ;
Weiner, DM ;
Kroeze, WK ;
Roth, BL .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2002, 277 (13) :11441-11449
[35]   Similar structures and shared switch mechanisms of the β2-adrenoceptor and the parathyroid hormone receptor -: Zn(II) bridges between helices III and VI block activation [J].
Sheikh, SP ;
Vilardarga, JP ;
Baranski, TJ ;
Lichtarge, O ;
Iiri, T ;
Meng, EC ;
Nissenson, RA ;
Bourne, HR .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1999, 274 (24) :17033-17041
[36]   Rhodopsin activation blocked by metal-ion-binding sites linking transmembrane helices C and F [J].
Sheikh, SP ;
Zvyaga, TA ;
Lichtarge, O ;
Sakmar, TP ;
Bourne, HR .
NATURE, 1996, 383 (6598) :347-350
[37]   Agonists and partial agonists of rhodopsin:: Retinals with ring modifications [J].
Vogel, R ;
Siebert, F ;
Lüdeke, S ;
Hirshfeld, A ;
Sheves, M .
BIOCHEMISTRY, 2005, 44 (35) :11684-11699
[38]   Rhodopsin photoproducts in 2D crystals [J].
Vogel, R ;
Ruprecht, J ;
Villa, C ;
Mielke, T ;
Schertler, GFX ;
Siebert, F .
JOURNAL OF MOLECULAR BIOLOGY, 2004, 338 (03) :597-609
[39]   Modulating rhodopsin receptor activation by altering the pKa of the retinal Schiff base [J].
Vogel, Reiner ;
Siebert, Friedrich ;
Yan, Elsa C. Y. ;
Sakmar, Thomas P. ;
Hirshfeld, Amiram ;
Sheves, Mordechai .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2006, 128 (32) :10503-10512
[40]   RHODOPSIN ACTIVATION - EFFECTS ON THE METARHODOPSIN-I METARHODOPSIN-II EQUILIBRIUM OF NEUTRALIZATION OR INTRODUCTION OF CHARGED AMINO-ACIDS WITHIN PUTATIVE TRANSMEMBRANE SEGMENTS [J].
WEITZ, CJ ;
NATHANS, J .
BIOCHEMISTRY, 1993, 32 (51) :14176-14182