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ortho and para chromophores of green fluorescent protein: controlling electron emission and internal conversion

Green fluorescent protein (GFP) continues to play an important role in the biological and biochemical sciences as an efficient fluorescent probe and is also known to undergo light-induced redox transformations. Here, we employ photoelectron spectroscopy and quantum chemistry calculations to investig...

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Autores principales: McLaughlin, Conor, Assmann, Mariana, Parkes, Michael A., Woodhouse, Joanne L., Lewin, Ross, Hailes, Helen C., Worth, Graham A., Fielding, Helen H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5933426/
https://www.ncbi.nlm.nih.gov/pubmed/29780449
http://dx.doi.org/10.1039/c6sc03833f
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author McLaughlin, Conor
Assmann, Mariana
Parkes, Michael A.
Woodhouse, Joanne L.
Lewin, Ross
Hailes, Helen C.
Worth, Graham A.
Fielding, Helen H.
author_facet McLaughlin, Conor
Assmann, Mariana
Parkes, Michael A.
Woodhouse, Joanne L.
Lewin, Ross
Hailes, Helen C.
Worth, Graham A.
Fielding, Helen H.
author_sort McLaughlin, Conor
collection PubMed
description Green fluorescent protein (GFP) continues to play an important role in the biological and biochemical sciences as an efficient fluorescent probe and is also known to undergo light-induced redox transformations. Here, we employ photoelectron spectroscopy and quantum chemistry calculations to investigate how the phenoxide moiety controls the competition between electron emission and internal conversion in the isolated GFP chromophore anion, following photoexcitation with ultraviolet light in the range 400–230 nm. We find that moving the phenoxide group from the para position to the ortho position enhances internal conversion back to the ground electronic state but that adding an additional OH group to the para chromophore, at the ortho position, impedes internal conversion. Guided by quantum chemistry calculations, we interpret these observations in terms of torsions around the C–C–C bridge being enhanced by electrostatic repulsions or impeded by the formation of a hydrogen-bonded seven-membered ring. We also find that moving the phenoxide group from the para position to the ortho position reduces the energy required for detachment processes, whereas adding an additional OH group to the para chromophore at the ortho position increases the energy required for detachment processes. These results have potential applications in tuning light-induced redox processes of this biologically and technologically important fluorescent protein.
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spelling pubmed-59334262018-05-18 ortho and para chromophores of green fluorescent protein: controlling electron emission and internal conversion McLaughlin, Conor Assmann, Mariana Parkes, Michael A. Woodhouse, Joanne L. Lewin, Ross Hailes, Helen C. Worth, Graham A. Fielding, Helen H. Chem Sci Chemistry Green fluorescent protein (GFP) continues to play an important role in the biological and biochemical sciences as an efficient fluorescent probe and is also known to undergo light-induced redox transformations. Here, we employ photoelectron spectroscopy and quantum chemistry calculations to investigate how the phenoxide moiety controls the competition between electron emission and internal conversion in the isolated GFP chromophore anion, following photoexcitation with ultraviolet light in the range 400–230 nm. We find that moving the phenoxide group from the para position to the ortho position enhances internal conversion back to the ground electronic state but that adding an additional OH group to the para chromophore, at the ortho position, impedes internal conversion. Guided by quantum chemistry calculations, we interpret these observations in terms of torsions around the C–C–C bridge being enhanced by electrostatic repulsions or impeded by the formation of a hydrogen-bonded seven-membered ring. We also find that moving the phenoxide group from the para position to the ortho position reduces the energy required for detachment processes, whereas adding an additional OH group to the para chromophore at the ortho position increases the energy required for detachment processes. These results have potential applications in tuning light-induced redox processes of this biologically and technologically important fluorescent protein. Royal Society of Chemistry 2017-02-01 2016-11-07 /pmc/articles/PMC5933426/ /pubmed/29780449 http://dx.doi.org/10.1039/c6sc03833f Text en This journal is © The Royal Society of Chemistry 2017 http://creativecommons.org/licenses/by/3.0/ This article is freely available. This article is licensed under a Creative Commons Attribution 3.0 Unported Licence (CC BY 3.0)
spellingShingle Chemistry
McLaughlin, Conor
Assmann, Mariana
Parkes, Michael A.
Woodhouse, Joanne L.
Lewin, Ross
Hailes, Helen C.
Worth, Graham A.
Fielding, Helen H.
ortho and para chromophores of green fluorescent protein: controlling electron emission and internal conversion
title ortho and para chromophores of green fluorescent protein: controlling electron emission and internal conversion
title_full ortho and para chromophores of green fluorescent protein: controlling electron emission and internal conversion
title_fullStr ortho and para chromophores of green fluorescent protein: controlling electron emission and internal conversion
title_full_unstemmed ortho and para chromophores of green fluorescent protein: controlling electron emission and internal conversion
title_short ortho and para chromophores of green fluorescent protein: controlling electron emission and internal conversion
title_sort ortho and para chromophores of green fluorescent protein: controlling electron emission and internal conversion
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5933426/
https://www.ncbi.nlm.nih.gov/pubmed/29780449
http://dx.doi.org/10.1039/c6sc03833f
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