4.8 Article

Alternative outlets for sustaining photosynthetic electron transport during dark-to-light transitions

出版社

NATL ACAD SCIENCES
DOI: 10.1073/pnas.1903185116

关键词

photosynthesis; starch metabolism; alternative electron outlets; FLV; PTOX

资金

  1. DOE [DE-SC0019417, DE-SC0019341]
  2. NIH [ES030158]
  3. Carnegie Institution for Science
  4. U.S. Department of Energy (DOE) [DE-SC0019341, DE-SC0019417] Funding Source: U.S. Department of Energy (DOE)

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Environmental stresses dramatically impact the balance between the production of photosynthetically derived energetic electrons and Calvin-Benson-Bassham cycle (CBBC) activity; an imbalance promotes accumulation of reactive oxygen species and causes cell damage. Hence, photosynthetic organisms have developed several strategies to route electrons toward alternative outlets that allow for storage or harmless dissipation of their energy. In this work, we explore the activities of three essential outlets associated with Chlamydomonas reinhardtii photosynthetic electron transport: (i) reduction of O-2 to H2O through flavodiiron proteins (FLVs) and (ii) plastid terminal oxidases (PTOX) and (iii) the synthesis of starch. Real-time measurements of O-2 exchange have demonstrated that FLVs immediately engage during dark-to-light transitions, allowing electron transport when the CBBC is not fully activated. Under these conditions, we quantified maximal FLV activity and its overall capacity to direct photosynthetic electrons toward O-2 reduction. However, when starch synthesis is compromised, a greater proportion of the electrons is directed toward O-2 reduction through both the FLVs and PTOX, suggesting an important role for starch synthesis in priming/regulating CBBC and electron transport. Moreover, partitioning energized electrons between sustainable (starch; energetic electrons are recaptured) and nonsustainable (H2O; energetic electrons are not recaptured) outlets is part of the energy management strategy of photosynthetic organisms that allows them to cope with the fluctuating conditions encountered in nature. Finally, unmasking the repertoire and control of such energetic reactions offers new directions for rational redesign and optimization of photosynthesis to satisfy global demands for food and other resources.

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