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Molecular mechanism of long-range synergetic color tuning between multiple amino acid residues in conger rhodopsin

The synergetic effects of multiple rhodopsin mutations on color tuning need to be completely elucidated. Systematic genetic studies and spectroscopy have demonstrated an interesting example of synergetic color tuning between two amino acid residues in conger rhodopsin’s ancestral pigment (p501): — a...

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Autores principales: Watanabe, Hiroshi C., Mori, Yoshiharu, Tada, Takashi, Yokoyama, Shozo, Yamato, Takahisa
Formato: Texto
Lenguaje:English
Publicado: The Biophysical Society of Japan (BSJ) 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3032607/
https://www.ncbi.nlm.nih.gov/pubmed/21297892
http://dx.doi.org/10.2142/biophysics.6.67
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author Watanabe, Hiroshi C.
Mori, Yoshiharu
Tada, Takashi
Yokoyama, Shozo
Yamato, Takahisa
author_facet Watanabe, Hiroshi C.
Mori, Yoshiharu
Tada, Takashi
Yokoyama, Shozo
Yamato, Takahisa
author_sort Watanabe, Hiroshi C.
collection PubMed
description The synergetic effects of multiple rhodopsin mutations on color tuning need to be completely elucidated. Systematic genetic studies and spectroscopy have demonstrated an interesting example of synergetic color tuning between two amino acid residues in conger rhodopsin’s ancestral pigment (p501): — a double mutation at one nearby and one distant residue led to a significant λ(max) blue shift of 13 nm, whereas neither of the single mutations at these two sites led to meaningful shifts. To analyze the molecular mechanisms of this synergetic color tuning, we performed homology modeling, molecular simulations, and electronic state calculations. For the double mutant, N195A/A292S, in silico mutation analysis demonstrated conspicuous structural changes in the retinal chromophore, whereas that of the single mutant, A292S, was almost unchanged. Using statistical ensembles of QM/MM optimized structures, the excitation energy of retinal chromophore was evaluated for the three visual pigments. As a result, the λ(max) shift of double mutant (DM) from p501 was −8 nm, while that of single mutant (SM) from p501 was +1 nm. Molecular dynamics simulation for DM demonstrated frequent isomerization between 6-s-cis and 6-s-trans conformers. Unexpectedly, however, the two conformers exhibited almost identical excitation energy, whereas principal component analysis (PCA) identified the retinal-counterion cooperative change of BLA (bond length alternation) and retinal-counterion interaction lead to the shift.
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spelling pubmed-30326072011-02-02 Molecular mechanism of long-range synergetic color tuning between multiple amino acid residues in conger rhodopsin Watanabe, Hiroshi C. Mori, Yoshiharu Tada, Takashi Yokoyama, Shozo Yamato, Takahisa Biophysics (Nagoya-shi) Articles The synergetic effects of multiple rhodopsin mutations on color tuning need to be completely elucidated. Systematic genetic studies and spectroscopy have demonstrated an interesting example of synergetic color tuning between two amino acid residues in conger rhodopsin’s ancestral pigment (p501): — a double mutation at one nearby and one distant residue led to a significant λ(max) blue shift of 13 nm, whereas neither of the single mutations at these two sites led to meaningful shifts. To analyze the molecular mechanisms of this synergetic color tuning, we performed homology modeling, molecular simulations, and electronic state calculations. For the double mutant, N195A/A292S, in silico mutation analysis demonstrated conspicuous structural changes in the retinal chromophore, whereas that of the single mutant, A292S, was almost unchanged. Using statistical ensembles of QM/MM optimized structures, the excitation energy of retinal chromophore was evaluated for the three visual pigments. As a result, the λ(max) shift of double mutant (DM) from p501 was −8 nm, while that of single mutant (SM) from p501 was +1 nm. Molecular dynamics simulation for DM demonstrated frequent isomerization between 6-s-cis and 6-s-trans conformers. Unexpectedly, however, the two conformers exhibited almost identical excitation energy, whereas principal component analysis (PCA) identified the retinal-counterion cooperative change of BLA (bond length alternation) and retinal-counterion interaction lead to the shift. The Biophysical Society of Japan (BSJ) 2010-12-25 /pmc/articles/PMC3032607/ /pubmed/21297892 http://dx.doi.org/10.2142/biophysics.6.67 Text en 2010 © The Biophysical Society of Japan
spellingShingle Articles
Watanabe, Hiroshi C.
Mori, Yoshiharu
Tada, Takashi
Yokoyama, Shozo
Yamato, Takahisa
Molecular mechanism of long-range synergetic color tuning between multiple amino acid residues in conger rhodopsin
title Molecular mechanism of long-range synergetic color tuning between multiple amino acid residues in conger rhodopsin
title_full Molecular mechanism of long-range synergetic color tuning between multiple amino acid residues in conger rhodopsin
title_fullStr Molecular mechanism of long-range synergetic color tuning between multiple amino acid residues in conger rhodopsin
title_full_unstemmed Molecular mechanism of long-range synergetic color tuning between multiple amino acid residues in conger rhodopsin
title_short Molecular mechanism of long-range synergetic color tuning between multiple amino acid residues in conger rhodopsin
title_sort molecular mechanism of long-range synergetic color tuning between multiple amino acid residues in conger rhodopsin
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3032607/
https://www.ncbi.nlm.nih.gov/pubmed/21297892
http://dx.doi.org/10.2142/biophysics.6.67
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