虾青素
雅罗维亚
代谢工程
生物化学
化学
酵母
葡萄糖基转移酶
从头合成
类胡萝卜素
生物合成
发酵
尿苷二磷酸葡萄糖
雨生红球菌
酿酒酵母
生物
葡萄糖苷
纤维二糖
糖原合酶
新陈代谢
脂质代谢
作者
Maria O. Taratynova,Ivan M. Tarasov,Iuliia M. Fedyaeva,Dmitry A. Dementev,Andrei Kenneth Whaley,A. S. Fedorov,Elaine Tran,Tigran V. Yuzbashev,Sergey P. Sineoky,Evgeniya Y. Yuzbasheva
标识
DOI:10.1021/acs.jafc.6c01673
摘要
Abstract Astaxanthin is a high-value carotenoid used in nutrition, cosmetics, pharmaceuticals, and biotechnology, but its poor water dispersibility and oxidative stability limit its formulation. Here, we engineered yeast Yarrowia lipolytica for the efficient production of glycosylated astaxanthin. Introducing zeaxanthin glucosyltransferase CrtX from Pantoea ananatis into an astaxanthin-producing strain enabled the synthesis of astaxanthin glucosides, confirmed by HR-ESI-MS, 1H NMR, and 2D NMR. Engineering UDP-glucose metabolism by reducing competing pathways and enhancing UDP-glucose biosynthesis improved the astaxanthin glucoside production. The best strategy comprised inactivation of the glycogen synthase gene GSY1 combined with multicopy integration of PGM1 (phosphoglucomutase) and UGP1 (UDP-glucose pyrophosphorylase), achieving 17.6 mg/L of astaxanthin monoglucoside and 25.1 mg/L of diglucoside in test-tube cultures. Fed-batch fermentation with glucose yielded 141.6 mg/L of astaxanthin monoglucoside. When corn syrup was used as a low-cost, sustainable carbon source, the production shifted toward astaxanthin diglucoside, reaching 134.3 mg/L. These results represent the highest glycosylated astaxanthin titers reported to date.
科研通智能强力驱动
Strongly Powered by AbleSci AI