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Updated: Sep 27, 2026

Measurement of Fatty Acid β-Oxidation in a Suspension of Freshly Isolated Mouse Hepatocytes
Published on: September 9, 2021
Coupling fatty acid biosynthesis to β-oxidation enhances the biosynthesis of malonyl-CoA-dependent polyketides
Takatoshi Suematsu1, Shumpei Asamizu2, Manami Takama1
1Graduate School of Science, Technology and Innovation, Kobe University, 1-1 Rokkodai, Nada, Kobe 657-8501, Japan; Konica Minolta, Inc., 2970 Ishikawa-machi, Hachioji, Tokyo 192-8505, Japan.
Abstract:
Malonyl-CoA is a major extender unit in polyketide biosynthesis; however, in Escherichia coli, it is predominantly consumed by fatty acid biosynthesis, limiting its availability for heterologous polyketide production. Here, we engineered a fatty acid biosynthesis-β-oxidation carbon-recycling pathway (FABOX pathway) that redirects fatty acid biosynthetic flux toward free fatty acid formation while reinforcing β-oxidation, thereby recycling carbon through acetyl-CoA to support malonyl-CoA-dependent polyketide biosynthesis. Application of this strategy to three malonyl-CoA-dependent polyketides, 1,3,8-trihydroxyanthraquinone (AQ256), phloroglucinol, and flaviolin, increased AQ256 and phloroglucinol production, whereas no clear improvement was observed for flaviolin. 13C-malonate tracing was consistent with β-oxidation-associated recycling of malonate-derived carbon into acetyl-CoA and extensive incorporation of malonate-derived carbon into AQ256. Here, we show that, although its effectiveness depends on the product and cultivation conditions, the FABOX pathway provides a mechanistically distinct flux-reconfiguration strategy for enhancing malonyl-CoA-dependent polyketide biosynthesis, complementing conventional precursor-supply-based approaches.
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