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A TDDFT investigation of the Photosystem II reaction center: Insights into the precursors to charge separation

Photosystem II (PS II) captures solar energy and directs charge separation (CS) across the thylakoid membrane during photosynthesis. The highly oxidizing, charge-separated state generated within its reaction center (RC) drives water oxidation. Spectroscopic studies on PS II RCs are difficult to inte...

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Autores principales: Kavanagh, Maeve A., Karlsson, Joshua K. G., Colburn, Jonathan D., Barter, Laura M. C., Gould, Ian R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7443915/
https://www.ncbi.nlm.nih.gov/pubmed/32747579
http://dx.doi.org/10.1073/pnas.1922158117
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author Kavanagh, Maeve A.
Karlsson, Joshua K. G.
Colburn, Jonathan D.
Barter, Laura M. C.
Gould, Ian R.
author_facet Kavanagh, Maeve A.
Karlsson, Joshua K. G.
Colburn, Jonathan D.
Barter, Laura M. C.
Gould, Ian R.
author_sort Kavanagh, Maeve A.
collection PubMed
description Photosystem II (PS II) captures solar energy and directs charge separation (CS) across the thylakoid membrane during photosynthesis. The highly oxidizing, charge-separated state generated within its reaction center (RC) drives water oxidation. Spectroscopic studies on PS II RCs are difficult to interpret due to large spectral congestion, necessitating modeling to elucidate key spectral features. Herein, we present results from time-dependent density functional theory (TDDFT) calculations on the largest PS II RC model reported to date. This model explicitly includes six RC chromophores and both the chlorin phytol chains and the amino acid residues <6 Å from the pigments’ porphyrin ring centers. Comparing our wild-type model results with calculations on mutant D1-His-198-Ala and D2-His-197-Ala RCs, our simulated absorption-difference spectra reproduce experimentally observed shifts in known chlorophyll absorption bands, demonstrating the predictive capabilities of this model. We find that inclusion of both nearby residues and phytol chains is necessary to reproduce this behavior. Our calculations provide a unique opportunity to observe the molecular orbitals that contribute to the excited states that are precursors to CS. Strikingly, we observe two high oscillator strength, low-lying states, in which molecular orbitals are delocalized over Chl(D1) and Phe(D1) as well as one weaker oscillator strength state with molecular orbitals delocalized over the P chlorophylls. Both these configurations are a match for previously identified exciton–charge transfer states (Chl(D1)(+)Phe(D1)(−))* and (P(D2)(+)P(D1)(−))*. Our results demonstrate the power of TDDFT as a tool, for studies of natural photosynthesis, or indeed future studies of artificial photosynthetic complexes.
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spelling pubmed-74439152020-09-01 A TDDFT investigation of the Photosystem II reaction center: Insights into the precursors to charge separation Kavanagh, Maeve A. Karlsson, Joshua K. G. Colburn, Jonathan D. Barter, Laura M. C. Gould, Ian R. Proc Natl Acad Sci U S A Physical Sciences Photosystem II (PS II) captures solar energy and directs charge separation (CS) across the thylakoid membrane during photosynthesis. The highly oxidizing, charge-separated state generated within its reaction center (RC) drives water oxidation. Spectroscopic studies on PS II RCs are difficult to interpret due to large spectral congestion, necessitating modeling to elucidate key spectral features. Herein, we present results from time-dependent density functional theory (TDDFT) calculations on the largest PS II RC model reported to date. This model explicitly includes six RC chromophores and both the chlorin phytol chains and the amino acid residues <6 Å from the pigments’ porphyrin ring centers. Comparing our wild-type model results with calculations on mutant D1-His-198-Ala and D2-His-197-Ala RCs, our simulated absorption-difference spectra reproduce experimentally observed shifts in known chlorophyll absorption bands, demonstrating the predictive capabilities of this model. We find that inclusion of both nearby residues and phytol chains is necessary to reproduce this behavior. Our calculations provide a unique opportunity to observe the molecular orbitals that contribute to the excited states that are precursors to CS. Strikingly, we observe two high oscillator strength, low-lying states, in which molecular orbitals are delocalized over Chl(D1) and Phe(D1) as well as one weaker oscillator strength state with molecular orbitals delocalized over the P chlorophylls. Both these configurations are a match for previously identified exciton–charge transfer states (Chl(D1)(+)Phe(D1)(−))* and (P(D2)(+)P(D1)(−))*. Our results demonstrate the power of TDDFT as a tool, for studies of natural photosynthesis, or indeed future studies of artificial photosynthetic complexes. National Academy of Sciences 2020-08-18 2020-08-03 /pmc/articles/PMC7443915/ /pubmed/32747579 http://dx.doi.org/10.1073/pnas.1922158117 Text en Copyright © 2020 the Author(s). Published by PNAS. http://creativecommons.org/licenses/by/4.0/ https://creativecommons.org/licenses/by/4.0/This open access article is distributed under Creative Commons Attribution License 4.0 (CC BY) (http://creativecommons.org/licenses/by/4.0/) .
spellingShingle Physical Sciences
Kavanagh, Maeve A.
Karlsson, Joshua K. G.
Colburn, Jonathan D.
Barter, Laura M. C.
Gould, Ian R.
A TDDFT investigation of the Photosystem II reaction center: Insights into the precursors to charge separation
title A TDDFT investigation of the Photosystem II reaction center: Insights into the precursors to charge separation
title_full A TDDFT investigation of the Photosystem II reaction center: Insights into the precursors to charge separation
title_fullStr A TDDFT investigation of the Photosystem II reaction center: Insights into the precursors to charge separation
title_full_unstemmed A TDDFT investigation of the Photosystem II reaction center: Insights into the precursors to charge separation
title_short A TDDFT investigation of the Photosystem II reaction center: Insights into the precursors to charge separation
title_sort tddft investigation of the photosystem ii reaction center: insights into the precursors to charge separation
topic Physical Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7443915/
https://www.ncbi.nlm.nih.gov/pubmed/32747579
http://dx.doi.org/10.1073/pnas.1922158117
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