Literature DB >> 17719606

Dynamic structure of retinylidene ligand of rhodopsin probed by molecular simulations.

Pick-Wei Lau1, Alan Grossfield2, Scott E Feller3, Michael C Pitman2, Michael F Brown4.   

Abstract

Rhodopsin is currently the only available atomic-resolution template for understanding biological functions of the G protein-coupled receptor (GPCR) family. The structural basis for the phenomenal dark state stability of 11-cis-retinal bound to rhodopsin and its ultrafast photoreaction are active topics of research. In particular, the beta-ionone ring of the retinylidene inverse agonist is crucial for the activation mechanism. We analyzed a total of 23 independent, 100 ns all-atom molecular dynamics simulations of rhodopsin embedded in a lipid bilayer in the microcanonical (N,V,E) ensemble. Analysis of intramolecular fluctuations predicts hydrogen-out-of-plane (HOOP) wagging modes of retinal consistent with those found in Raman vibrational spectroscopy. We show that sampling and ergodicity of the ensemble of simulations are crucial for determining the distribution of conformers of retinal bound to rhodopsin. The polyene chain is rigidly locked into a single, twisted conformation, consistent with the function of retinal as an inverse agonist in the dark state. Most surprisingly, the beta-ionone ring is mobile within its binding pocket; interactions are non-specific and the cavity is sufficiently large to enable structural heterogeneity. We find that retinal occupies two distinct conformations in the dark state, contrary to most previous assumptions. The beta-ionone ring can rotate relative to the polyene chain, thereby populating both positively and negatively twisted 6-s-cis enantiomers. This result, while unexpected, strongly agrees with experimental solid-state (2)H NMR spectra. Correlation analysis identifies the residues most critical to controlling mobility of retinal; we find that Trp265 moves away from the ionone ring prior to any conformational transition. Our findings reinforce how molecular dynamics simulations can challenge conventional assumptions for interpreting experimental data, especially where existing models neglect conformational fluctuations.

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Year:  2007        PMID: 17719606      PMCID: PMC5233727          DOI: 10.1016/j.jmb.2007.06.047

Source DB:  PubMed          Journal:  J Mol Biol        ISSN: 0022-2836            Impact factor:   5.469


  70 in total

1.  Movement of retinal along the visual transduction path.

Authors:  B Borhan; M L Souto; H Imai; Y Shichida; K Nakanishi
Journal:  Science       Date:  2000-06-23       Impact factor: 47.728

Review 2.  Structural clues to the mechanism of ion pumping in bacteriorhodopsin.

Authors:  Hartmut Luecke; Janos K Lanyi
Journal:  Adv Protein Chem       Date:  2003

3.  QM/MM study of energy storage and molecular rearrangements due to the primary event in vision.

Authors:  Jose A Gascon; Victor S Batista
Journal:  Biophys J       Date:  2004-08-31       Impact factor: 4.033

4.  The retinal conformation and its environment in rhodopsin in light of a new 2.2 A crystal structure.

Authors:  Tetsuji Okada; Minoru Sugihara; Ana-Nicoleta Bondar; Marcus Elstner; Peter Entel; Volker Buss
Journal:  J Mol Biol       Date:  2004-09-10       Impact factor: 5.469

5.  Elastic properties of a single-stranded charged homopolymeric ribonucleotide.

Authors:  Yeonee Seol; Gary M Skinner; Koen Visscher
Journal:  Phys Rev Lett       Date:  2004-09-10       Impact factor: 9.161

6.  An ab initio study on the torsional surface of alkanes and its effect on molecular simulations of alkanes and a DPPC bilayer.

Authors:  Jeffery B Klauda; Bernard R Brooks; Alexander D MacKerell; Richard M Venable; Richard W Pastor
Journal:  J Phys Chem B       Date:  2005-03-24       Impact factor: 2.991

7.  Curvature and hydrophobic forces drive oligomerization and modulate activity of rhodopsin in membranes.

Authors:  Ana Vitória Botelho; Thomas Huber; Thomas P Sakmar; Michael F Brown
Journal:  Biophys J       Date:  2006-09-29       Impact factor: 4.033

8.  Chromophore orientation in bacteriorhodopsin determined from the angular dependence of deuterium nuclear magnetic resonance spectra of oriented purple membranes.

Authors:  S Moltke; A A Nevzorov; N Sakai; I Wallat; C Job; K Nakanishi; M P Heyn; M F Brown
Journal:  Biochemistry       Date:  1998-08-25       Impact factor: 3.162

9.  Solution and biologically relevant conformations of enantiomeric 11-cis-locked cyclopropyl retinals.

Authors:  Yukari Fujimoto; Nathan Fishkin; Gennaro Pescitelli; John Decatur; Nina Berova; Koji Nakanishi
Journal:  J Am Chem Soc       Date:  2002-06-26       Impact factor: 15.419

10.  A role for direct interactions in the modulation of rhodopsin by omega-3 polyunsaturated lipids.

Authors:  Alan Grossfield; Scott E Feller; Michael C Pitman
Journal:  Proc Natl Acad Sci U S A       Date:  2006-03-17       Impact factor: 11.205

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  24 in total

1.  Coupling of retinal, protein, and water dynamics in squid rhodopsin.

Authors:  Eduardo Jardón-Valadez; Ana-Nicoleta Bondar; Douglas J Tobias
Journal:  Biophys J       Date:  2010-10-06       Impact factor: 4.033

2.  Molecular dynamics simulations reveal specific interactions of post-translational palmitoyl modifications with rhodopsin in membranes.

Authors:  Bjoern E S Olausson; Alan Grossfield; Michael C Pitman; Michael F Brown; Scott E Feller; Alexander Vogel
Journal:  J Am Chem Soc       Date:  2012-02-22       Impact factor: 15.419

Review 3.  Solid-state 2H NMR spectroscopy of retinal proteins in aligned membranes.

Authors:  Michael F Brown; Maarten P Heyn; Constantin Job; Suhkmann Kim; Stephan Moltke; Koji Nakanishi; Alexander A Nevzorov; Andrey V Struts; Gilmar F J Salgado; Ingrid Wallat
Journal:  Biochim Biophys Acta       Date:  2007-10-23

4.  Mechanism of signal propagation upon retinal isomerization: insights from molecular dynamics simulations of rhodopsin restrained by normal modes.

Authors:  Basak Isin; Klaus Schulten; Emad Tajkhorshid; Ivet Bahar
Journal:  Biophys J       Date:  2008-04-04       Impact factor: 4.033

5.  Crystal structure of metarhodopsin II.

Authors:  Hui-Woog Choe; Yong Ju Kim; Jung Hee Park; Takefumi Morizumi; Emil F Pai; Norbert Krauss; Klaus Peter Hofmann; Patrick Scheerer; Oliver P Ernst
Journal:  Nature       Date:  2011-03-09       Impact factor: 49.962

6.  Retinal ligand mobility explains internal hydration and reconciles active rhodopsin structures.

Authors:  Nicholas Leioatts; Blake Mertz; Karina Martínez-Mayorga; Tod D Romo; Michael C Pitman; Scott E Feller; Alan Grossfield; Michael F Brown
Journal:  Biochemistry       Date:  2014-01-08       Impact factor: 3.162

7.  Location of the retinal chromophore in the activated state of rhodopsin*.

Authors:  Shivani Ahuja; Evan Crocker; Markus Eilers; Viktor Hornak; Amiram Hirshfeld; Martine Ziliox; Natalie Syrett; Philip J Reeves; H Gobind Khorana; Mordechai Sheves; Steven O Smith
Journal:  J Biol Chem       Date:  2009-01-28       Impact factor: 5.157

8.  A role for a specific cholesterol interaction in stabilizing the Apo configuration of the human A(2A) adenosine receptor.

Authors:  Edward Lyman; Chris Higgs; Byungchan Kim; Dmitry Lupyan; John C Shelley; Ramy Farid; Gregory A Voth
Journal:  Structure       Date:  2009-12-09       Impact factor: 5.006

Review 9.  Retinal dynamics during light activation of rhodopsin revealed by solid-state NMR spectroscopy.

Authors:  Michael F Brown; Gilmar F J Salgado; Andrey V Struts
Journal:  Biochim Biophys Acta       Date:  2009-08-28

10.  Structural impact of the E113Q counterion mutation on the activation and deactivation pathways of the G protein-coupled receptor rhodopsin.

Authors:  Jörg Standfuss; Ekaterina Zaitseva; Mohana Mahalingam; Reiner Vogel
Journal:  J Mol Biol       Date:  2008-04-30       Impact factor: 5.469

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