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Improving photosynthetic efficiency of rice via over-expressing a ferredoxin-like protein gene from Methanothermobacter thermautotrophicus. | LitMetric

AI Article Synopsis

  • Ferredoxins (Fds) play an important role in plant processes such as photosynthesis and nitrogen fixation, but their full function in different organisms is still not fully understood.
  • This study focused on the impact of the MtFd protein from Methanothermobacter thermoautotrophicus on the photosynthetic efficiency of rice, finding that it localized to chloroplasts and significantly improved photosynthetic capacity in transgenic plants compared to wild types.
  • The enhanced photosynthesis led to greater electron transport rates, increased NADPH and net photosynthetic rates, larger grain sizes, and raised levels of reactive oxygen species (ROS) which boosted the antioxidant system's enzymatic activity.

Article Abstract

Ferredoxins (Fds) are crucial in various essential plant metabolic processes, including photosynthesis, fermentation and aerobic nitrogen fixation, due to their role in electron transport rate (ETR). However, the full scope of ferredoxin's function across prokaryotes and eukaryotic plants remains less understood. This study investigated the effect of MtFd from Methanothermobacter thermoautotrophicus on rice photosynthetic efficiency. We found that MtFd was localized in the chloroplasts of rice protoplasts. Transgenic analysis showed that MtFd significantly enhanced the photosynthetic capacity compared to the wild-type plants. This enhancement was evident through increased ETR, NADPH content and net photosynthetic rates, as well as decreased non-photochemical quenching (NPQ). Despite similar biomass to wild type plants, MtFd transgenic plants exhibited a marked increase in grain size and the 1000-grian weight. The elevated ETR and surplus free electrons in transgenic plants result in a considerable rise in cellular ROS content, which in turn enhances the enzymatic activity of the antioxidant system. In summary, our findings suggest that introducing the Fd protein from M. thermoautotrophicus into transgenic rice improves photosynthetic efficiency by accelerating ETR, which triggers the cellular oxidative stress response.

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Source
http://dx.doi.org/10.1111/ppl.14571DOI Listing

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