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Impact of energy limitations on function and resilience in long-wavelength Photosystem II

View ORCID ProfileStefania Viola, View ORCID ProfileWilliam Roseby, View ORCID ProfileStefano Santabarabara, View ORCID ProfileDennis Nürnberg, Ricardo Assunção, View ORCID ProfileHolger Dau, View ORCID ProfileJulien Sellés, View ORCID ProfileAlain Boussac, View ORCID ProfileAndrea Fantuzzi, View ORCID ProfileA William Rutherford
doi: https://doi.org/10.1101/2022.04.05.486971
Stefania Viola
aDepartment of Life Sciences, Imperial College, SW7 2AZ London, UK
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  • For correspondence: a.rutherford@imperial.ac.uk s.viola@imperial.ac.uk
William Roseby
aDepartment of Life Sciences, Imperial College, SW7 2AZ London, UK
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Stefano Santabarabara
bPhotosyntesis Research Unit, Consiglio Nazionale delle Ricerche, 20133 Milano, Italy
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Dennis Nürnberg
cPhysics Department, Freie Universität Berlin, 14195 Berlin, Germany
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Ricardo Assunção
cPhysics Department, Freie Universität Berlin, 14195 Berlin, Germany
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Holger Dau
cPhysics Department, Freie Universität Berlin, 14195 Berlin, Germany
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Julien Sellés
dInstitut de Biologie Physico-Chimique, UMR CNRS 7141 and Sorbonne Université, 75005 Paris, France
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Alain Boussac
eInstitut de Biologie Intégrative de la Cellule, UMR9198, CEA Saclay, 91191 Gif-Sur-Yvette, France
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Andrea Fantuzzi
aDepartment of Life Sciences, Imperial College, SW7 2AZ London, UK
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A William Rutherford
aDepartment of Life Sciences, Imperial College, SW7 2AZ London, UK
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  • For correspondence: a.rutherford@imperial.ac.uk s.viola@imperial.ac.uk
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Abstract

Photosystem II (PSII) uses the energy from red light to split water and reduce quinone, an energy-demanding process based on chlorophyll a (Chl-a) photochemistry. Two kinds of cyanobacterial PSII can use Chl-d and Chl-f to perform the same reactions using lower energy, far-red light. PSII from Acaryochloris marina has Chl-d replacing all but one of its 35 Chl-a, while PSII from Chroococcidiopsis thermalis, a facultative far-red species, has just 4 Chl-f and 1 Chl-d and 30 Chl-a. From bioenergetic considerations, the far-red PSII were predicted to lose photochemical efficiency and/or resilience to photodamage. Here, we compare enzyme turnover efficiency, forward electron transfer, back-reactions and photodamage in Chl-f-PSII, Chl-d-PSII and Chl-a-PSII. We show that: i) all types of PSII have a comparable efficiency in enzyme turnover; ii) the modified energy gaps on the acceptor side of Chl-d-PSII favor recombination via PD1+Phe- repopulation, leading to increased singlet oxygen production and greater sensitivity to high-light damage compared to Chl-a-PSII and Chl-f-PSII; ii) the acceptor-side energy gaps in Chl-f-PSII are tuned to avoid harmful back reactions, favoring resilience to photodamage over efficiency of light usage. The results are explained by the differences in the redox tuning of the electron transfer cofactors Phe and QA and in the number and layout of the chlorophylls that share the excitation energy with the primary electron donor. PSII has adapted to lower energy in two distinct ways, each appropriate for its specific environment but with different functional penalties.

Competing Interest Statement

The authors have declared no competing interest.

Footnotes

  • Statistical analyses of the data added; Discussion and Fig. 7 updated; author affiliations updated; Supplemental file updated

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Posted April 30, 2022.
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Impact of energy limitations on function and resilience in long-wavelength Photosystem II
Stefania Viola, William Roseby, Stefano Santabarabara, Dennis Nürnberg, Ricardo Assunção, Holger Dau, Julien Sellés, Alain Boussac, Andrea Fantuzzi, A William Rutherford
bioRxiv 2022.04.05.486971; doi: https://doi.org/10.1101/2022.04.05.486971
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Impact of energy limitations on function and resilience in long-wavelength Photosystem II
Stefania Viola, William Roseby, Stefano Santabarabara, Dennis Nürnberg, Ricardo Assunção, Holger Dau, Julien Sellés, Alain Boussac, Andrea Fantuzzi, A William Rutherford
bioRxiv 2022.04.05.486971; doi: https://doi.org/10.1101/2022.04.05.486971

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