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

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 types of cyanobacterial PSII can use chlorophyll d (Chl-d) and chlorophyll f (Chl-f) to perform the same reactions using lower energy...

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Autores principales: Viola, Stefania, Roseby, William, Santabarbara, Stefano, Nürnberg, Dennis, Assunção, Ricardo, Dau, Holger, Sellés, Julien, Boussac, Alain, Fantuzzi, Andrea, Rutherford, A William
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2022
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Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9439682/
https://www.ncbi.nlm.nih.gov/pubmed/35852834
http://dx.doi.org/10.7554/eLife.79890
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author Viola, Stefania
Roseby, William
Santabarbara, Stefano
Nürnberg, Dennis
Assunção, Ricardo
Dau, Holger
Sellés, Julien
Boussac, Alain
Fantuzzi, Andrea
Rutherford, A William
author_facet Viola, Stefania
Roseby, William
Santabarbara, Stefano
Nürnberg, Dennis
Assunção, Ricardo
Dau, Holger
Sellés, Julien
Boussac, Alain
Fantuzzi, Andrea
Rutherford, A William
author_sort Viola, Stefania
collection PubMed
description 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 types of cyanobacterial PSII can use chlorophyll d (Chl-d) and chlorophyll f (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 favour recombination via P(D1)(+)Phe(-) repopulation, leading to increased singlet oxygen production and greater sensitivity to high-light damage compared to Chl-a-PSII and Chl-f-PSII; (iii) the acceptor-side energy gaps in Chl-f-PSII are tuned to avoid harmful back reactions, favouring 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 Q(A) 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.
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spelling pubmed-94396822022-09-03 Impact of energy limitations on function and resilience in long-wavelength Photosystem II Viola, Stefania Roseby, William Santabarbara, Stefano Nürnberg, Dennis Assunção, Ricardo Dau, Holger Sellés, Julien Boussac, Alain Fantuzzi, Andrea Rutherford, A William eLife Structural Biology and Molecular Biophysics 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 types of cyanobacterial PSII can use chlorophyll d (Chl-d) and chlorophyll f (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 favour recombination via P(D1)(+)Phe(-) repopulation, leading to increased singlet oxygen production and greater sensitivity to high-light damage compared to Chl-a-PSII and Chl-f-PSII; (iii) the acceptor-side energy gaps in Chl-f-PSII are tuned to avoid harmful back reactions, favouring 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 Q(A) 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. eLife Sciences Publications, Ltd 2022-07-19 /pmc/articles/PMC9439682/ /pubmed/35852834 http://dx.doi.org/10.7554/eLife.79890 Text en © 2022, Viola et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Structural Biology and Molecular Biophysics
Viola, Stefania
Roseby, William
Santabarbara, Stefano
Nürnberg, Dennis
Assunção, Ricardo
Dau, Holger
Sellés, Julien
Boussac, Alain
Fantuzzi, Andrea
Rutherford, A William
Impact of energy limitations on function and resilience in long-wavelength Photosystem II
title Impact of energy limitations on function and resilience in long-wavelength Photosystem II
title_full Impact of energy limitations on function and resilience in long-wavelength Photosystem II
title_fullStr Impact of energy limitations on function and resilience in long-wavelength Photosystem II
title_full_unstemmed Impact of energy limitations on function and resilience in long-wavelength Photosystem II
title_short Impact of energy limitations on function and resilience in long-wavelength Photosystem II
title_sort impact of energy limitations on function and resilience in long-wavelength photosystem ii
topic Structural Biology and Molecular Biophysics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9439682/
https://www.ncbi.nlm.nih.gov/pubmed/35852834
http://dx.doi.org/10.7554/eLife.79890
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