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Anoxygenic photosynthesis and the delayed oxygenation of Earth's atmosphere. | LitMetric

AI Article Synopsis

  • The rise of oxygenic photosynthesis significantly changed Earth's energy dynamics, but early forms of photosynthesis using reduced species like Fe(II) competed for resources with these oxygen-producing organisms.
  • This research combines microbiology, genomics, and Earth modeling to show that when the ocean is rich in Fe(II), competition between oxygenic and anoxygenic photosynthesizers reduces global photosynthetic oxygen release.
  • The study suggests that this competition may have stunted Earth's atmospheric oxygen levels early on, while also revealing a feedback loop that could lead to increased oxygenation as atmospheric conditions change.

Article Abstract

The emergence of oxygenic photosynthesis created a new niche with dramatic potential to transform energy flow through Earth's biosphere. However, more primitive forms of photosynthesis that fix CO into biomass using electrons from reduced species like Fe(II) and H instead of water would have competed with Earth's early oxygenic biosphere for essential nutrients. Here, we combine experimental microbiology, genomic analyses, and Earth system modeling to demonstrate that competition for light and nutrients in the surface ocean between oxygenic phototrophs and Fe(II)-oxidizing, anoxygenic photosynthesizers (photoferrotrophs) translates into diminished global photosynthetic O release when the ocean interior is Fe(II)-rich. These results provide a simple ecophysiological mechanism for inhibiting atmospheric oxygenation during Earth's early history. We also find a novel positive feedback within the coupled C-P-O-Fe cycles that can lead to runaway planetary oxygenation as rising atmospheric pO sweeps the deep ocean of the ferrous iron substrate for photoferrotrophy.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6616575PMC
http://dx.doi.org/10.1038/s41467-019-10872-zDOI Listing

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