Schäfer Kilan J, Aras Marco, Boles Eckhard, Kayser Oliver
Faculty of Biochemical and Chemical Engineering, Technical University Dortmund, 44227, Dortmund, Germany.
Institute of Molecular Biosciences, Goethe-University Frankfurt, 60438, Frankfurt am Main, Germany.
Biotechnol Biofuels Bioprod. 2024 Dec 4;17(1):141. doi: 10.1186/s13068-024-02586-2.
Medium chain fatty acids (MCFAs) are valuable platform compounds for the production of biotechnologically relevant chemicals such as biofuels and biochemicals. Two distinct pathways have been implemented in the yeast Saccharomyces cerevisiae for the biosynthetic production of MCFAs: (i) the mutant fatty acid biosynthesis (FAB) pathway in which the fatty acid synthase (FAS) complex is mutated and (ii) a heterologous multispecies-derived reverse β-oxidation (rBOX) pathway. Hexanoic acid has become of great interest as its acyl-CoA ester, hexanoyl-CoA, is required for the biosynthesis of olivetolic acid (OA), a cannabinoid precursor. Due to insufficient endogenous synthesis of hexanoyl-CoA, recombinant microbial systems to date require exogenous supplementation of cultures with hexanoate along with the overexpression of an acyl-CoA ligase to allow cannabinoid biosynthesis. Here, we engineer a recombinant S. cerevisiae strain which was metabolically optimized for the production of hexanoic acid via the FAB and rBOX pathways and we combine both pathways in a single strain to achieve titers of up to 120 mg L. Moreover, we demonstrate the biosynthesis of up to 15 mg L OA from glucose using hexanoyl-CoA derived from the rBOX pathway.
中链脂肪酸(MCFAs)是用于生产生物燃料和生物化学品等具有生物技术相关性化学品的重要平台化合物。酿酒酵母中已实现了两条不同的途径用于MCFAs的生物合成生产:(i)突变脂肪酸生物合成(FAB)途径,其中脂肪酸合酶(FAS)复合体发生突变;(ii)一种源自多物种的异源反向β-氧化(rBOX)途径。己酸因其酰基辅酶A酯己酰辅酶A是大麻素前体橄榄酸(OA)生物合成所必需的,而备受关注。由于己酰辅酶A的内源性合成不足,迄今为止,重组微生物系统需要向培养物中外源补充己酸盐,并同时过表达酰基辅酶A连接酶以实现大麻素的生物合成。在此,我们构建了一株重组酿酒酵母菌株,该菌株通过FAB和rBOX途径进行了代谢优化以生产己酸,并且我们将这两条途径整合到单个菌株中,实现了高达120 mg/L的产量。此外,我们证明了使用源自rBOX途径的己酰辅酶A从葡萄糖生物合成高达15 mg/L的OA。