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Charge transfer as a mechanism for chlorophyll fluorescence concentration quenching

  • Susannah L Bourne-Worster*
  • , Oliver J H Feighan
  • , Frederick R Manby
  • *Corresponding author for this work

Research output: Contribution to journalArticle (Academic Journal)peer-review

16 Citations (Scopus)

Abstract

Highly concentrated solutions of chlorophyll display rapid fluorescence quenching. The same devastating energy loss is not seen in photosynthetic light-harvesting antenna complexes, despite the need for chromophores to be in close proximity to facilitate energy transfer. A promising, though unconfirmed mechanism for the observed quenching is energy transfer from an excited chlorophyll monomer to a closely associated chlorophyll pair that subsequently undergoes rapid nonradiative decay to the ground state via a short-lived intermediate charge-transfer state. In this work, we make use of newly emerging fast methods in quantum chemistry to assess the feasibility of this proposed mechanism. We calculate rate constants for the initial charge separation, based on Marcus free-energy surfaces extracted from molecular dynamics simulations of solvated chlorophyll pairs, demonstrating that this pathway will compete with fluorescence (i.e., drive quenching) at experimentally measured quenching concentrations. We show that the rate of charge separation is highly sensitive to interchlorophyll distance and the relative orientations of chromophores within a quenching pair. We discuss possible solvent effects on the rate of charge separation (and consequently the degree of quenching), using the light-harvesting complex II (LH2) protein from rps. acidophila as a specific example of how this process might be controlled in a protein environment. Crucially, we reveal that the LH2 antenna protein prevents quenching, even at the high chlorophyll concentrations required for efficient energy transfer, by restricting the range of orientations that neighboring chlorophyll pairs can adopt.
Original languageEnglish
Article numbere2210811120
Pages (from-to)1-9
Number of pages9
JournalProceedings of the National Academy of Sciences
Volume120
Issue number5
Early online date23 Jan 2023
DOIs
Publication statusPublished - 31 Jan 2023

Bibliographical note

Funding Information:
ACKNOWLEDGMENTS. We thank Benedetta Mennucci for kindly providing us with full forcefield files for LH2. We gratefully acknowledge the funding agencies that supported this work: S.B.-W. was supported by a research fellowship from the Royal Commission for the Exhibition of 1851 and O.F. was funded by the US Department of Energy (DE-FOA-0001912).

Publisher Copyright:
Copyright © 2023 the Author(s).

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  • An efficient protocol for excited states of large biochromophores

    Feighan, O. J. H., Manby, F. R. & Bourne-Worster, S. L., 10 Jan 2023, In: The Journal of Chemical Physics. 158, 2, p. 024107 14 p., 024107.

    Research output: Contribution to journalArticle (Academic Journal)peer-review

    Open Access
    2 Citations (Scopus)

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