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Updated: Apr 26, 2026

Genetic Engineering of an Unconventional Yeast for Renewable Biofuel and Biochemical Production
Published on: September 20, 2016
Producción de novo de cetona de frambuesa de alto título en Yarrowia lipolytica mediante ingeniería de suministro de
Yuanyuan Li1, Shuhao Niu1, Zixuan Wang1
1School of Biotechnology and Key Laboratory of Industrial Biotechnology of Ministry of Education, Jiangnan University, Wuxi 214122, China; Key Laboratory of Industrial Synthetic Biology of Jiangsu Province, Jiangnan University, Wuxi 214122, China.
Abstract:
Raspberry ketone (RK) is a high-value aroma compound, yet de novo microbial production is constrained by an imbalanced supply of l-tyrosine and malonyl-CoA. Here, Yarrowia lipolytica was engineered for high-titer RK biosynthesis from glucose. A multi-copy RK pathway was integrated into the 26S rDNA locus. Deregulating and strengthening the shikimate pathway increased l-tyrosine formation, while reinforcing the pentose phosphate pathway and improving the conversion of L-tyrosine to p-coumaric acid (PCA) enhanced the supply of erythrose 4-phosphate, NADPH, and PCA, thereby alleviating l-tyrosine accumulation. To relieve malonyl-CoA limitation, we strengthened β-oxidation, introduced a non-carboxylative malonyl-CoA route, and reduced neutral lipid storage, improving RK production by 1.49-fold. In a 5-L fed-batch process optimized for carbon feeding, initial medium, and nitrogen supplementation, RK reached 7.24 g/L, representing a 42.5-fold improvement over the initial shake-flask strain and, based on published studies to date, the highest reported de novo RK titer in microbial fermentation.
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