Related Experiment Video
Updated: Jan 8, 2026

Assembly and Quantification of Co-Cultures Combining Heterotrophic Yeast with Phototrophic Sugar-Secreting Cyanobacteria
Published on: December 27, 2024
Gas-Phase Integration of Trophically Distinct Microbial Cultures for Net-Reduced CO2 and Enhanced Metabolite
Jaeyoung Yu1, Danbee Kim2,3, Jiye Lee2
1Department of Biotechnology and Life Science, Tokyo University of Agriculture and Technology, Tokyo, Japan.
Abstract:
The continued increase in atmospheric CO2 concentrations has intensified global efforts to develop sustainable biotechnologies that capture and reutilise carbon rather than releasing it. While photosynthetic microorganisms provide a renewable route for CO2 fixation into organic products, heterotrophic fermentation remains the industrial standard due to its high productivity, controllability and scalability. Consequently, integrating the carbon efficiency of autotrophic processes with the productivity of heterotrophic systems may represent a promising strategy toward circular biomanufacturing. Here, we developed a gas-linked co-culture system designed to spatially separate heterotrophic and autotrophic metabolisms while enabling gas-phase CO2 exchange between them. This configuration allowed CO2 released during heterotrophic metabolism to be reutilised in autotrophic metabolism, supporting cooperative carbon cycling. Compared to non-linked controls, the gas-linked system enhanced biomass accumulation and nearly doubled the production of value-added metabolites-namely polyhydroxybutyrate (PHB) and carotenoids-while reducing net CO2 emissions by 20.62%. Although further optimisation is necessary to approach a fully net-zero process, this study demonstrates that gas-phase integration of trophically distinct cultures offers a promising platform for circular carbon biorefineries.
Related Concept Videos
Microbial Fermentation
Metabolism of Chemolithotrophs
Inorganic Nitrogen Assimilation
Carbon-dioxide Fixation
Bioremediation

