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- W3205904952 abstract "Microalgae can accumulate various carbon-neutral products, but their real-world applications are hindered by their CO2 susceptibility. Herein, the transcriptomic changes in a model microalga, Chlamydomonas reinhardtii, in a high-CO2 milieu (20%) are evaluated. The primary toxicity mechanism consists of aberrantly low expression of plasma membrane H+-ATPases (PMAs) accompanied by intracellular acidification. Our results demonstrate that the expression of a universally expressible PMA in wild-type strains makes them capable of not only thriving in acidity levels that they usually cannot survive but also exhibiting 3.2-fold increased photoautotrophic production against high CO2 via maintenance of a higher cytoplasmic pH. A proof-of-concept experiment involving cultivation with toxic flue gas (13 vol% CO2, 20 ppm NOX, and 32 ppm SOX) shows that the production of CO2-based bioproducts by the strain is doubled compared with that by the wild-type, implying that this strategy potentially enables the microalgal valorization of CO2 in industrial exhaust." @default.
- W3205904952 created "2021-10-25" @default.
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- W3205904952 date "2021-10-18" @default.
- W3205904952 modified "2023-10-14" @default.
- W3205904952 title "Augmented CO2 tolerance by expressing a single H+-pump enables microalgal valorization of industrial flue gas" @default.
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- W3205904952 doi "https://doi.org/10.1038/s41467-021-26325-5" @default.
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