Li Chenyue, Qi Yanli, Sun Zhongke, Jiang Mengwan, Li Chengwei
School of Biological Engineering, Henan University of Technology, Zhengzhou, 450001, China.
Nanyang Institute of Medical Plant Technology and Industry, Nanyang, 473005, China.
Synth Syst Biotechnol. 2023 Oct 19;8(4):673-681. doi: 10.1016/j.synbio.2023.10.002. eCollection 2023 Dec.
The microbial synthesis of paclitaxel is attractive for its short-cycle, cost-effectiveness, and sustainability. However, low paclitaxel productivity, depleted capacity during subculture and storage, and unclear biosynthesis mechanisms restrain industrial microbial synthesis. Along with the isolation of various paclitaxel-producing microorganisms and the development of versatile molecular tools, tremendous promises for microbial paclitaxel synthesis have become increasingly prominent. In this review, we summarize the progress of microbial synthesis of paclitaxel in recent years, focusing on paclitaxel-producing endophytes and representative engineering microorganism hosts that were used as chassis for paclitaxel precursor synthesis. Numerous wide-type microbes can manufacture paclitaxel, and fermentation process optimization and strain improvement can greatly enhance the productivity. Engineered microbes can efficiently synthesize precursors of paclitaxel by introducing exogenous synthetic pathway. Mining paclitaxel synthetic pathways and genetic manipulation of endophytes will accelerate the construction of microbial cell factories, indefinitely contributing to paclitaxel mass production by microbes. This review emphasizes the potential and provides solutions for efficient microbial paclitaxel mass production.
紫杉醇的微生物合成因其周期短、成本效益高和可持续性而具有吸引力。然而,紫杉醇生产率低、传代培养和储存过程中能力耗尽以及生物合成机制不明等问题限制了其工业化微生物合成。随着各种产紫杉醇微生物的分离以及通用分子工具的发展,微生物合成紫杉醇的巨大前景日益凸显。在本综述中,我们总结了近年来紫杉醇微生物合成的进展,重点关注产紫杉醇内生菌和用作紫杉醇前体合成底盘的代表性工程微生物宿主。众多野生型微生物能够制造紫杉醇,发酵工艺优化和菌株改良可大大提高生产率。通过引入外源合成途径,工程微生物能够高效合成紫杉醇前体。挖掘紫杉醇合成途径并对内生菌进行基因操作将加速微生物细胞工厂的构建,为微生物大规模生产紫杉醇做出无限贡献。本综述强调了其潜力,并为高效微生物大规模生产紫杉醇提供了解决方案。