Literature DB >> 10096888

Simulation analysis of the retinal conformational equilibrium in dark-adapted bacteriorhodopsin.

J Baudry1, S Crouzy, B Roux, J C Smith.   

Abstract

In dark-adapted bacteriorhodopsin (bR) the retinal moiety populates two conformers: all-trans and (13,15)cis. Here we examine factors influencing the thermodynamic equilibrium and conformational transition between the two forms, using molecular mechanics and dynamics calculations. Adiabatic potential energy mapping indicates that whereas the twofold intrinsic torsional potentials of the C13==C14 and C15==N16 double bonds favor a sequential torsional pathway, the protein environment favors a concerted, bicycle-pedal mechanism. Which of these two pathways will actually occur in bR depends on the as yet unknown relative weight of the intrinsic and environmental effects. The free energy difference between the conformers was computed for wild-type and modified bR, using molecular dynamics simulation. In the wild-type protein the free energy of the (13,15)cis retinal form is calculated to be 1.1 kcal/mol lower than the all-trans retinal form, a value within approximately kBT of experiment. In contrast, in isolated retinal the free energy of the all-trans state is calculated to be 2.1 kcal/mol lower than (13,15)cis. The free energy differences are similar to the adiabatic potential energy differences in the various systems examined, consistent with an essentially enthalpic origin. The stabilization of the (13,15)cis form in bR relative to the isolated retinal molecule is found to originate from improved protein-protein interactions. Removing internal water molecules near the Schiff base strongly stabilizes the (13,15)cis form, whereas a double mutation that removes negative charges in the retinal pocket (Asp85 to Ala; Asp212 to Ala) has the opposite effect.

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Year:  1999        PMID: 10096888      PMCID: PMC1300166          DOI: 10.1016/S0006-3495(99)77349-2

Source DB:  PubMed          Journal:  Biophys J        ISSN: 0006-3495            Impact factor:   4.033


  32 in total

1.  Quantum dynamics of the femtosecond photoisomerization of retinal in bacteriorhodopsin.

Authors:  M Ben-Nun; F Molnar; H Lu; J C Phillips; T J Martínez; K Schulten
Journal:  Faraday Discuss       Date:  1998       Impact factor: 4.008

2.  Bicycle-pedal model for the first step in the vision process.

Authors:  A Warshel
Journal:  Nature       Date:  1976-04-22       Impact factor: 49.962

3.  Thermodynamic stability of water molecules in the bacteriorhodopsin proton channel: a molecular dynamics free energy perturbation study.

Authors:  B Roux; M Nina; R Pomès; J C Smith
Journal:  Biophys J       Date:  1996-08       Impact factor: 4.033

4.  Hydration effects on the photocycle of bacteriorhodopsin in thin layers of purple membrane.

Authors:  R Korenstein; B Hess
Journal:  Nature       Date:  1977-11-10       Impact factor: 49.962

5.  Retinal isomer ratio in dark-adapted purple membrane and bacteriorhodopsin monomers.

Authors:  P Scherrer; M K Mathew; W Sperling; W Stoeckenius
Journal:  Biochemistry       Date:  1989-01-24       Impact factor: 3.162

6.  Free-energy simulations of the retinal cis --> trans isomerization in bacteriorhodopsin.

Authors:  A Hermone; K Kuczera
Journal:  Biochemistry       Date:  1998-03-03       Impact factor: 3.162

7.  Structure and fluctuations of bacteriorhodopsin in the purple membrane: a molecular dynamics study.

Authors:  O Edholm; O Berger; F Jähnig
Journal:  J Mol Biol       Date:  1995-06-30       Impact factor: 5.469

8.  Molecular dynamics study of the M412 intermediate of bacteriorhodopsin.

Authors:  D Xu; M Sheves; K Schulten
Journal:  Biophys J       Date:  1995-12       Impact factor: 4.033

9.  Nuclear magnetic resonance study of the Schiff base in bacteriorhodopsin: counterion effects on the 15N shift anisotropy.

Authors:  H J de Groot; G S Harbison; J Herzfeld; R G Griffin
Journal:  Biochemistry       Date:  1989-04-18       Impact factor: 3.162

10.  Proton transfer pathways in bacteriorhodopsin at 2.3 angstrom resolution.

Authors:  H Luecke; H T Richter; J K Lanyi
Journal:  Science       Date:  1998-06-19       Impact factor: 47.728

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  5 in total

1.  Molecular dynamics study of the nature and origin of retinal's twisted structure in bacteriorhodopsin.

Authors:  E Tajkhorshid; J Baudry; K Schulten; S Suhai
Journal:  Biophys J       Date:  2000-02       Impact factor: 4.033

2.  Replica exchange Monte-Carlo simulations of helix bundle membrane proteins: rotational parameters of helices.

Authors:  H-H Wu; C-C Chen; C-M Chen
Journal:  J Comput Aided Mol Des       Date:  2012-03-31       Impact factor: 3.686

Review 3.  Quantum Mechanical and Molecular Mechanics Modeling of Membrane-Embedded Rhodopsins.

Authors:  Mikhail N Ryazantsev; Dmitrii M Nikolaev; Andrey V Struts; Michael F Brown
Journal:  J Membr Biol       Date:  2019-09-30       Impact factor: 1.843

4.  How environment supports a state: molecular dynamics simulations of two states in bacteriorhodopsin suggest lipid and water compensation.

Authors:  Hyunbum Jang; Paul S Crozier; Mark J Stevens; Thomas B Woolf
Journal:  Biophys J       Date:  2004-07       Impact factor: 4.033

5.  Identification of Specific Effect of Chloride on the Spectral Properties and Structural Stability of Multiple Extracellular Glutamic Acid Mutants of Bacteriorhodopsin.

Authors:  Tzvetana Lazarova; Krzysztof Mlynarczyk; Enric Querol; Boris Tenchov; Slawomir Filipek; Esteve Padrós
Journal:  PLoS One       Date:  2016-09-22       Impact factor: 3.240

  5 in total

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