代谢工程
酵母
生物化学
计算生物学
合成生物学
代谢途径
生物合成
化学
酶
基质(水族馆)
生化工程
定向进化
范围(计算机科学)
可持续生产
底物特异性
紫杉醇
可扩展性
生物
组合化学
酿酒酵母
系统生物学
蛋白质工程
生物催化
红豆杉
计算机科学
生物技术
代谢网络
作者
Yuanwei Gou,Bin Jiang,Xiaojing Jiang,Yiwei Zhang,陈彬彬,Jiaojiao Zhang,Da Li,Yuxing Wang,Jianbin Yan,Jiazhang Lian
标识
DOI:10.1021/acssynbio.6c00148
摘要
Paclitaxel (Taxol) is among the most successful natural anticancer agents, yet its manufacturing still relies on expensive semisynthetic methods carried out under harsh alkaline conditions. Deciphering the entire Taxol biosynthetic pathway has been a longstanding challenge for over 50 years because of its complex regulatory network, but it has only recently been understood. Differences between plant and microbial systems render current knowledge insufficient for scalable biotechnological production, necessitating systematic metabolic engineering to overcome multiple bottlenecks. Artificial pathways can compensate for an incomplete understanding of native biosynthesis and offer an alternative strategy to alleviate supply constraints. Here, we report the construction of an artificial pathway in yeast that uses (2R,3S)-3-phenylisoserine as the substrate and requires only three enzymatic steps to convert baccatin III to Taxol, demonstrating the broad substrate scope of β-phenylalanoyl-CoA ligases (PCLs). Structure–activity analysis of Baccatin III:3-amino-3-phenylpropanoyltransferase (BAPT) is further employed to enhance its catalytic efficiency toward non-natural substrates. This work offers a practical strategy for the first step of sustainable production of Taxol using synthetic biology.
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