4.5 Article

Nitric oxide represses photosystem II and NDH-1 in the cyanobacterium Synechocystis sp. PCC 6803

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ELSEVIER
DOI: 10.1016/j.bbabio.2021.148507

关键词

Photosynthesis; Linear electron transport; Nitric oxide; Photosystem II; NADH dehydrogenase-like complex 1 cyanobacteria

资金

  1. NordForsk Nordic Center of Excel-lence NordAqua [82845]
  2. Academy of Finland [315119]
  3. Finnish Academy of Science and Letters
  4. Doctoral Programme Molecular Life Sciences at the Turku University Graduate school
  5. Academy of Finland (AKA) [315119, 315119] Funding Source: Academy of Finland (AKA)

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The study demonstrates that the gaseous radical nitric oxide (NO) can block photosynthetic electron transfer in cyanobacterial cells by repressing PSII, PSI, and likely the NDH-1 complex. These findings reveal the profound effects of NO on cyanobacterial cells and emphasize the importance of controlled NO homeostasis in cyanobacteria.
Photosynthetic electron transfer comprises a series of light-induced redox reactions catalysed by multiprotein machinery in the thylakoid. These protein complexes possess cofactors susceptible to redox modifications by reactive small molecules. The gaseous radical nitric oxide (NO), a key signalling molecule in green algae and plants, has earlier been shown to bind to Photosystem (PS) II and obstruct electron transfer in plants. The effects of NO on cyanobacterial bioenergetics however, have long remained obscure. In this study, we exposed the model cyanobacterium Synechocystis sp. PCC 6803 to NO under anoxic conditions and followed changes in whole-cell fluorescence and oxidoreduction of P700 in vivo. Our results demonstrate that NO blocks photosynthetic electron transfer in cells by repressing PSII, PSI, and likely the NDH dehydrogenase-like complex 1 (NDH1). We propose that iron-sulfur clusters of NDH-1 complex may be affected by NO to such an extent that ferredoxin-derived electron injection to the plastoquinone pool, and thus cyclic electron transfer, may be inhibited. These findings reveal the profound effects of NO on Synechocystis cells and demonstrate the importance of controlled NO homeostasis in cyanobacteria.

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