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Regulation of the generation of reactive oxygen species during photosynthetic electron transport

Journal

BIOCHEMICAL SOCIETY TRANSACTIONS
Volume 50, Issue 2, Pages 1025-1034

Publisher

PORTLAND PRESS LTD
DOI: 10.1042/BST20211246

Keywords

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Funding

  1. Labex Saclay Plant Sciences-SPS [ANR-17-EUR-0007]

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Light capture by chlorophylls and photosynthetic electron transport can generate reactive oxygen species (ROS), but under normal physiological conditions, the production of these ROS is regulated to non-destructive levels. Photosystem II is more susceptible to photoinhibition but can be quickly repaired, while photosystem I is largely protected. The size of the proton gradient plays a crucial role in preventing photoinhibition. Various antioxidants can quench or scavenge ROS.
Light capture by chlorophylls and photosynthetic electron transport bury the risk of the generation of reactive oxygen species (ROS) including singlet oxygen, superoxide anion radicals and hydrogen peroxide. Rapid changes in light intensity, electron fluxes and accumulation of strong oxidants and reductants increase ROS production. Superoxide is mainly generated at the level of photosystem I while photosystem II is the main source of singlet oxygen. ROS can induce oxidative damage of the photosynthetic apparatus, however, ROS are also important to tune processes inside the chloroplast and participate in retrograde signalling regulating the expression of genes involved in acclimation responses. Under most physiological conditions light harvesting and photosynthetic electron transport are regulated to keep the level of ROS at a non-destructive level. Photosystem II is most prone to photoinhibition but can be quickly repaired while photosystem I is protected in most cases. The size of the transmembrane proton gradient is central for the onset of mechanisms that protect against photoinhibition. The proton gradient allows dissipation of excess energy as heat in the antenna systems and it regulates electron transport. pH-dependent slowing down of electron donation to photosystem I protects it against ROS generation and damage. Cyclic electron transfer and photoreduction of oxygen contribute to the size of the proton gradient. The yield of singlet oxygen production in photosystem II is regulated by changes in the midpoint potential of its primary quinone acceptor. In addition, numerous antioxidants inside the photosystems, the antenna and the thylakoid membrane quench or scavenge ROS.

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