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Complexation of Green and Red Kaede Fluorescent Protein Chromophores by a Zwitterion to Probe Electrostatic and Induction Field Effects

[Image: see text] The photophysics of green fluorescent protein (GFP) and red Kaede fluorescent protein (rKFP) are defined by the intrinsic properties of the light-absorbing chromophore and its interaction with the protein binding pocket. This work deploys photodissociation action spectroscopy to pr...

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Autores principales: Ashworth, Eleanor K., Stockett, Mark H., Kjær, Christina, Bulman Page, Philip C., Meech, Stephen R., Nielsen, Steen Brøndsted, Bull, James N.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9628818/
https://www.ncbi.nlm.nih.gov/pubmed/35138862
http://dx.doi.org/10.1021/acs.jpca.1c10628
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author Ashworth, Eleanor K.
Stockett, Mark H.
Kjær, Christina
Bulman Page, Philip C.
Meech, Stephen R.
Nielsen, Steen Brøndsted
Bull, James N.
author_facet Ashworth, Eleanor K.
Stockett, Mark H.
Kjær, Christina
Bulman Page, Philip C.
Meech, Stephen R.
Nielsen, Steen Brøndsted
Bull, James N.
author_sort Ashworth, Eleanor K.
collection PubMed
description [Image: see text] The photophysics of green fluorescent protein (GFP) and red Kaede fluorescent protein (rKFP) are defined by the intrinsic properties of the light-absorbing chromophore and its interaction with the protein binding pocket. This work deploys photodissociation action spectroscopy to probe the absorption profiles for a series of synthetic GFP and rKFP chromophores as the bare anions and as complexes with the betaine zwitterion, which is assumed as a model for dipole microsolvation. Electronic structure calculations and energy decomposition analysis using Symmetry-Adapted Perturbation Theory are used to characterize gas-phase structures and complex cohesion forces. The calculations reveal a preponderance for coordination of betaine to the phenoxide deprotonation site predominantly through electrostatic forces. Calculations using the STEOM-DLPNO-CCSD method are able to reproduce absolute and relative vertical excitation energies for the bare anions and anion–betaine complexes. On the other hand, treatment of the betaine molecule with a point-charge model, in which the charges are computed from some common electron density population analysis schemes, show that just electrostatic and point-charge induction interactions are unable to account for the betaine-induced spectral shift. The present methodology could be applied to investigate cluster forces and optical properties in other gas-phase ion–zwitterion complexes.
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spelling pubmed-96288182022-11-03 Complexation of Green and Red Kaede Fluorescent Protein Chromophores by a Zwitterion to Probe Electrostatic and Induction Field Effects Ashworth, Eleanor K. Stockett, Mark H. Kjær, Christina Bulman Page, Philip C. Meech, Stephen R. Nielsen, Steen Brøndsted Bull, James N. J Phys Chem A [Image: see text] The photophysics of green fluorescent protein (GFP) and red Kaede fluorescent protein (rKFP) are defined by the intrinsic properties of the light-absorbing chromophore and its interaction with the protein binding pocket. This work deploys photodissociation action spectroscopy to probe the absorption profiles for a series of synthetic GFP and rKFP chromophores as the bare anions and as complexes with the betaine zwitterion, which is assumed as a model for dipole microsolvation. Electronic structure calculations and energy decomposition analysis using Symmetry-Adapted Perturbation Theory are used to characterize gas-phase structures and complex cohesion forces. The calculations reveal a preponderance for coordination of betaine to the phenoxide deprotonation site predominantly through electrostatic forces. Calculations using the STEOM-DLPNO-CCSD method are able to reproduce absolute and relative vertical excitation energies for the bare anions and anion–betaine complexes. On the other hand, treatment of the betaine molecule with a point-charge model, in which the charges are computed from some common electron density population analysis schemes, show that just electrostatic and point-charge induction interactions are unable to account for the betaine-induced spectral shift. The present methodology could be applied to investigate cluster forces and optical properties in other gas-phase ion–zwitterion complexes. American Chemical Society 2022-02-09 2022-02-24 /pmc/articles/PMC9628818/ /pubmed/35138862 http://dx.doi.org/10.1021/acs.jpca.1c10628 Text en © 2022 American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Ashworth, Eleanor K.
Stockett, Mark H.
Kjær, Christina
Bulman Page, Philip C.
Meech, Stephen R.
Nielsen, Steen Brøndsted
Bull, James N.
Complexation of Green and Red Kaede Fluorescent Protein Chromophores by a Zwitterion to Probe Electrostatic and Induction Field Effects
title Complexation of Green and Red Kaede Fluorescent Protein Chromophores by a Zwitterion to Probe Electrostatic and Induction Field Effects
title_full Complexation of Green and Red Kaede Fluorescent Protein Chromophores by a Zwitterion to Probe Electrostatic and Induction Field Effects
title_fullStr Complexation of Green and Red Kaede Fluorescent Protein Chromophores by a Zwitterion to Probe Electrostatic and Induction Field Effects
title_full_unstemmed Complexation of Green and Red Kaede Fluorescent Protein Chromophores by a Zwitterion to Probe Electrostatic and Induction Field Effects
title_short Complexation of Green and Red Kaede Fluorescent Protein Chromophores by a Zwitterion to Probe Electrostatic and Induction Field Effects
title_sort complexation of green and red kaede fluorescent protein chromophores by a zwitterion to probe electrostatic and induction field effects
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9628818/
https://www.ncbi.nlm.nih.gov/pubmed/35138862
http://dx.doi.org/10.1021/acs.jpca.1c10628
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