Atomistic Insights into Rhodopsin Activation from a Dynamic Model
- 12 July 2008
- journal article
- research article
- Published by American Chemical Society (ACS) in Journal of the American Chemical Society
- Vol. 130 (31) , 10141-10149
- https://doi.org/10.1021/ja0765520
Abstract
Rhodopsin, the light sensitive receptor responsible for blue-green vision, serves as a prototypical G protein-coupled receptor (GPCR). Upon light absorption, it undergoes a series of conformational changes that lead to the active form, metarhodopsin II (META II), initiating a signaling cascade through binding to the G protein transducin (Gt). Here, we first develop a structural model of META II by applying experimental distance restraints to the structure of lumi-rhodopsin (LUMI), an earlier intermediate. The restraints are imposed by using a combination of biased molecular dynamics simulations and perturbations to an elastic network model. We characterize the motions of the transmembrane helices in the LUMI-to-META II transition and the rearrangement of interhelical hydrogen bonds. We then simulate rhodopsin activation in a dynamic model to study the path leading from LUMI to our META II model for wild-type rhodopsin and a series of mutants. The simulations show a strong correlation between the transition dynamics and the pharmacological phenotypes of the mutants. These results help identify the molecular mechanisms of activation in both wild type and mutant rhodopsin. While static models can provide insights into the mechanisms of ligand recognition and predict ligand affinity, a dynamic model of activation could be applicable to study the pharmacology of other GPCRs and their ligands, offering a key to predictions of basal activity and ligand efficacy.Keywords
This publication has 74 references indexed in Scilit:
- How a small change in retinal leads to G‐protein activation: Initial events suggested by molecular dynamics calculationsProteins-Structure Function and Bioinformatics, 2006
- Crystal structure of a photoactivated deprotonated intermediate of rhodopsinProceedings of the National Academy of Sciences, 2006
- Local peptide movement in the photoreaction intermediate of rhodopsinProceedings of the National Academy of Sciences, 2006
- Crystallographic Analysis of Primary Visual PhotochemistryAngewandte Chemie International Edition in English, 2006
- G Protein–Coupled Receptor RhodopsinAnnual Review of Biochemistry, 2006
- The Retinal Conformation and its Environment in Rhodopsin in Light of a New 2.2 Å Crystal StructureJournal of Molecular Biology, 2004
- Forced unfolding of fibronectin type 3 modules: an analysis by biased molecular dynamics simulationsJournal of Molecular Biology, 1999
- All-Atom Empirical Potential for Molecular Modeling and Dynamics Studies of ProteinsThe Journal of Physical Chemistry B, 1998
- Specific Tryptophan UV-Absorbance Changes Are Probes of the Transition of Rhodopsin to Its Active StateBiochemistry, 1996
- CHARMM: A program for macromolecular energy, minimization, and dynamics calculationsJournal of Computational Chemistry, 1983