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February 27, 2026Applied Microbiology and Biotechnology1 citationsOpen Access

CO2-driven biosurfactant synthesis by bacteria within CCUS

ANAmanda P. NappWDWilliam Lautert DutraLDLovaine Silva Duarte

Key Points

  • The review aims to explore microbial CO2 capture's potential for sustainable biosurfactant production within the Microbial-CCUS framework.
  • Reviewed metabolic and engineering aspects of microbial carbon capture.
  • Analyzed anaerobic and CO2-enriched systems for biosurfactant production.
  • Discussed genetic and synthetic biology innovations related to biosurfactant pathways.
  • Identified new routes for biosurfactant synthesis using anaerobic and CO2-enriched cultures.
  • Highlighted the role of synthetic biology in linking CO2 fixation with biosurfactant biosynthesis.
  • Noted the potential of AI to enhance productivity and energy efficiency in biosurfactant production.

Abstract

Abstract Microbial CO 2 capture coupled with biosurfactant production represents a promising strategy for greenhouse gas mitigation and sustainable biomanufacturing. This review examines the metabolic and engineering aspects of microbial carbon capture, focusing on both anaerobic and CO 2 -enriched systems within the Microbial-CCUS framework. The structural diversity, physicochemical properties, and industrial applications of microbial biosurfactants are discussed, along with emerging evidence of anaerobic biosurfactant synthesis linked to CO 2 metabolism. Advances in genetic and synthetic biology, pathway modularization, and systems-level modeling are reshaping the potential to coordinate CO 2 fixation with biosurfactant biosynthesis. Integrating artificial intelligence with metabolic engineering may further optimize productivity, scalability, and energy efficiency. Despite technical and economic challenges, the convergence of CO 2 utilization, biotechnology, and digital innovation offers a transformative route toward circular carbon systems and climate mitigation. Key points • Microbial CO 2 capture drives biosurfactant synthesis within Microbial-CCUS systems . • Anaerobic and CO 2 -enriched cultures unlock new routes for sustainable biomanufacturing. • Synthetic biology links carbon-fixation modules to biosurfactant pathways . Graphical abstract

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Cite This Study

Napp et al. (2026) studied this question.

synapsesocial.com/papers/69a1357fed1d949a99abf734https://doi.org/10.1007/s00253-026-13761-w
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