Modeling activated states of GPCRs: the rhodopsin template

被引:58
作者
Niv, Masha Y.
Skrabanek, Lucy
Filizola, Marta
Weinstein, Harel
机构
[1] Cornell Univ, Weill Med Coll, Dept Physiol & Biophys, New York, NY 10021 USA
[2] Cornell Univ, Weill Med Coll, HRH Prince Alwaleed Bin Talal Bin Abdulaziz Alsau, New York, NY 10021 USA
关键词
D O I
10.1007/s10822-006-9061-3
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 (GPCRs) is an allosteric mechanism triggered by ligand binding and resulting in conformational changes transduced by the transmembrane domain. Models of the activated forms of GPCRs have become increasingly necessary for the development of a clear understanding of signal propagation into the cell. Experimental evidence points to a multiplicity of conformations related to the activation of the receptor, rendered important physiologically by the suggestion that different conformations may be responsible for coupling to different signaling pathways. In contrast to the inactive state of rhodopsin (RHO) for which several high quality X-ray structures are available, the structure-related information for the active states of rhodopsin and all other GPCRs is indirect. We have collected and stored such information in a repository we maintain for activation-specific structural data available for rhodopsin-like GPCRs, http://www.physiology.med.cornell.edu/GPCRactivation/gpcrindex.html. Using these data as structural constraints, we have applied Simulated Annealing Molecular Dynamics to construct a number of different active state models of RHO starting from the known inactive structure. The common features of the models indicate that TM3 and TM5 play an important role in activation, in addition to the well-established rearrangement of TM6. Some of the structural changes observed in these models occur in regions that were not involved in the constraints, and have not been previously tested experimentally; they emerge as interesting candidates for further experimental exploration of the conformational space of activated GPCRs. We show that none of the normal modes calculated from the inactive structure has a dominant contribution along the path of conformational rearrangement from inactive to the active forms of RHO in the models. This result may differentiate rhodopsin from other GPCRs, and the reasons for this difference are discussed in the context of the structural properties and the physiological function of the protein.
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收藏
页码:437 / 448
页数:12
相关论文
共 89 条
[1]   Transducin-alpha C-terminal peptide binding site consists of C-D and E-F loops of rhodopsin [J].
Acharya, S ;
Saad, Y ;
Karnik, SS .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1997, 272 (10) :6519-6524
[2]   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
[3]   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
[4]   PDB_Hydro: incorporating dipolar solvents with variable density in the Poisson-Boltzmann treatment of macromolecule electrostatics [J].
Azuara, Cyril ;
Lindahl, Erik ;
Koehl, Patrice ;
Orland, Henri ;
Delarue, Marc .
NUCLEIC ACIDS RESEARCH, 2006, 34 :W38-W42
[5]   Coarse-grained normal mode analysis in structural biology [J].
Bahar, I ;
Rader, AJ .
CURRENT OPINION IN STRUCTURAL BIOLOGY, 2005, 15 (05) :586-592
[6]   Correlation between native-state hydrogen exchange and cooperative residue fluctuations from a simple model [J].
Bahar, I ;
Wallqvist, A ;
Covell, DG ;
Jernigan, RL .
BIOCHEMISTRY, 1998, 37 (04) :1067-1075
[7]   Functional microdomains in g-protein-coupled receptors - The conserved Arginine-cage motif in the gonadotropin-releasing hormone receptor [J].
Ballesteros, J ;
Kitanovic, S ;
Guarnieri, F ;
Davies, P ;
Fromme, BJ ;
Konvicka, K ;
Chi, L ;
Millar, RP ;
Davidson, JS ;
Weinstein, H ;
Sealfon, SC .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1998, 273 (17) :10445-10453
[8]  
Ballesteros JA, 1995, Methods Neurosci, V25, P366, DOI [DOI 10.1016/S1043-9471(05)80049-7, 10.1016/S1043-9471(05)80049-7]
[9]   G protein-coupled receptors:: In silico drug discovery in 3D [J].
Becker, OM ;
Marantz, Y ;
Shacham, S ;
Inbal, B ;
Heifetz, A ;
Kalid, O ;
Bar-Haim, S ;
Warshaviak, D ;
Fichman, M ;
Noiman, S .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2004, 101 (31) :11304-11309
[10]   Protein-based virtual screening of chemical databases. II. Are homology models of G-protein coupled receptors suitable targets? [J].
Bissantz, C ;
Bernard, P ;
Hibert, M ;
Rognan, D .
PROTEINS-STRUCTURE FUNCTION AND BIOINFORMATICS, 2003, 50 (01) :5-25