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Redshifted and Near‐infrared Active Analog Pigments Based upon Archaerhodopsin‐3

Archaerhodopsin‐3 (AR3) is a member of the microbial rhodopsin family of hepta‐helical transmembrane proteins, containing a covalently bound molecule of all‐trans retinal as a chromophore. It displays an absorbance band in the visible region of the solar spectrum (λmax 556 nm) and functions as a lig...

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Autores principales: Ganapathy, Srividya, Kratz, Svenja, Chen, Que, Hellingwerf, Klaas J., de Groot, Huub J.M., Rothschild, Kenneth J., de Grip, Willem J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6849744/
https://www.ncbi.nlm.nih.gov/pubmed/30860604
http://dx.doi.org/10.1111/php.13093
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author Ganapathy, Srividya
Kratz, Svenja
Chen, Que
Hellingwerf, Klaas J.
de Groot, Huub J.M.
Rothschild, Kenneth J.
de Grip, Willem J.
author_facet Ganapathy, Srividya
Kratz, Svenja
Chen, Que
Hellingwerf, Klaas J.
de Groot, Huub J.M.
Rothschild, Kenneth J.
de Grip, Willem J.
author_sort Ganapathy, Srividya
collection PubMed
description Archaerhodopsin‐3 (AR3) is a member of the microbial rhodopsin family of hepta‐helical transmembrane proteins, containing a covalently bound molecule of all‐trans retinal as a chromophore. It displays an absorbance band in the visible region of the solar spectrum (λmax 556 nm) and functions as a light‐driven proton pump in the archaeon Halorubrum sodomense. AR3 and its mutants are widely used in neuroscience as optogenetic neural silencers and in particular as fluorescent indicators of transmembrane potential. In this study, we investigated the effect of analogs of the native ligand all‐trans retinal A1 on the spectral properties and proton‐pumping activity of AR3 and its single mutant AR3 (F229S). While, surprisingly, the 3‐methoxyretinal A2 analog did not redshift the absorbance maximum of AR3, the analogs retinal A2 and 3‐methylamino‐16‐nor‐1,2,3,4‐didehydroretinal (MMAR) did generate active redshifted AR3 pigments. The MMAR analog pigments could even be activated by near‐infrared light. Furthermore, the MMAR pigments showed strongly enhanced fluorescence with an emission band in the near‐infrared peaking around 815 nm. We anticipate that the AR3 pigments generated in this study have widespread potential for near‐infrared exploitation as fluorescent voltage‐gated sensors in optogenetics and artificial leafs and as proton pumps in bioenergy‐based applications.
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spelling pubmed-68497442019-11-15 Redshifted and Near‐infrared Active Analog Pigments Based upon Archaerhodopsin‐3 Ganapathy, Srividya Kratz, Svenja Chen, Que Hellingwerf, Klaas J. de Groot, Huub J.M. Rothschild, Kenneth J. de Grip, Willem J. Photochem Photobiol Research Articles Archaerhodopsin‐3 (AR3) is a member of the microbial rhodopsin family of hepta‐helical transmembrane proteins, containing a covalently bound molecule of all‐trans retinal as a chromophore. It displays an absorbance band in the visible region of the solar spectrum (λmax 556 nm) and functions as a light‐driven proton pump in the archaeon Halorubrum sodomense. AR3 and its mutants are widely used in neuroscience as optogenetic neural silencers and in particular as fluorescent indicators of transmembrane potential. In this study, we investigated the effect of analogs of the native ligand all‐trans retinal A1 on the spectral properties and proton‐pumping activity of AR3 and its single mutant AR3 (F229S). While, surprisingly, the 3‐methoxyretinal A2 analog did not redshift the absorbance maximum of AR3, the analogs retinal A2 and 3‐methylamino‐16‐nor‐1,2,3,4‐didehydroretinal (MMAR) did generate active redshifted AR3 pigments. The MMAR analog pigments could even be activated by near‐infrared light. Furthermore, the MMAR pigments showed strongly enhanced fluorescence with an emission band in the near‐infrared peaking around 815 nm. We anticipate that the AR3 pigments generated in this study have widespread potential for near‐infrared exploitation as fluorescent voltage‐gated sensors in optogenetics and artificial leafs and as proton pumps in bioenergy‐based applications. John Wiley and Sons Inc. 2019-04-08 2019 /pmc/articles/PMC6849744/ /pubmed/30860604 http://dx.doi.org/10.1111/php.13093 Text en © 2019 The Authors. Photochemistry and Photobiology published by Wiley Periodicals, Inc. on behalf of American Society for Photobiology This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Ganapathy, Srividya
Kratz, Svenja
Chen, Que
Hellingwerf, Klaas J.
de Groot, Huub J.M.
Rothschild, Kenneth J.
de Grip, Willem J.
Redshifted and Near‐infrared Active Analog Pigments Based upon Archaerhodopsin‐3
title Redshifted and Near‐infrared Active Analog Pigments Based upon Archaerhodopsin‐3
title_full Redshifted and Near‐infrared Active Analog Pigments Based upon Archaerhodopsin‐3
title_fullStr Redshifted and Near‐infrared Active Analog Pigments Based upon Archaerhodopsin‐3
title_full_unstemmed Redshifted and Near‐infrared Active Analog Pigments Based upon Archaerhodopsin‐3
title_short Redshifted and Near‐infrared Active Analog Pigments Based upon Archaerhodopsin‐3
title_sort redshifted and near‐infrared active analog pigments based upon archaerhodopsin‐3
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6849744/
https://www.ncbi.nlm.nih.gov/pubmed/30860604
http://dx.doi.org/10.1111/php.13093
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