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March 7, 2026Fermentation2 citationsOpen Access

Sustainable Co-Production of Carotenoids and Lipids by Rhodotorula toruloides Metabolizing Acetate Derived from Carbon Dioxide Fermentation

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CNCecilia Naveira-PazosMVMaría C. VeigaCKChristian Kennes

Key Points

  • The research investigates the ability of Rhodotorula toruloides to produce lipids and carotenoids from acetic acid derived from CO2 fermentation.
  • Conducted aerobic fermentations in automated bioreactors using acetic acid and glucose as substrates.
  • Measured microbial oil and carotenoid accumulation under different substrate conditions.
  • Evaluated growth and metabolite production using a fermented broth from Acetobacterium woodii.
  • Rhodotorula toruloides reached a maximum lipid content of 27.2% with glucose.
  • Higher carotenoid content (1.4 mg/g) was achieved with acetic acid compared to glucose (1.0 mg/g).
  • The organism grew and produced carotenoids in a complex broth from CO2 fermentation, indicating high adaptability.

Abstract

The ability of Rhodotorula toruloides DSM 4444 to metabolize low-cost carbon sources such as fatty acids was comprehensively studied. This organism is shown, for the first time, to simultaneously accumulate microbial oils (biofuel precursors) and carotenoids from acetic acid obtained from CO2 fermentation. This fatty acid is typically the single end product of acetogenic bioconversion of one-carbon gas pollutants (e.g., CO2 and CO). In the first set of experiments, different aerobic fermentations were carried out in automated bioreactors, with acetic acid in one case and with glucose, a more conventional carbon source, as a control, in another bioreactor. R. toruloides consumed around 80 g/L substrate under both conditions. Maximum lipid content (27.2% g/g dry weight) was reached from 38 g/L glucose, while carotenoid content was higher with acetic acid (1.4 mg/g cell after 54.1 g/L acetic acid consumed), representing a 40% increase compared to glucose (1.0 mg/g cell after 64.2 g/L glucose consumed). Additionally, in the second set of assays, a fermented broth produced by Acetobacterium woodii from CO2 fermentation, containing residual nutrients and metabolites, was tested. Despite its complex composition, R. toruloides grew and produced carotenoids (up to 0.141 mg/g), showing potential adaptability. To the best of our knowledge, this is the first report on a greenhouse gas-based biotechnological process as a promising sustainable alternative for the valorization of pollutants, e.g., gas emissions, their bioconversion to VFAs, such as acetic acid, and subsequent fermentation of the carboxylic acid into microbial oils, as a source of renewable energy, as well as carotenoids as a high-value nutraceutical product.

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Cite This Study

Naveira-Pazos et al. (2026) studied this question.

synapsesocial.com/papers/69abc1b45af8044f7a4ea9eehttps://doi.org/10.3390/fermentation12030138
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