选择性
化学
羟基化
定向进化
生物化学
代谢工程
产量(工程)
酶
立体化学
组合化学
突变体
基因
催化作用
材料科学
冶金
作者
Steven Edgar,Fu‐Shuang Li,Kangjian Qiao,Jing‐Ke Weng,Gregory Stephanopoulos
标识
DOI:10.1021/acssynbio.6b00206
摘要
Attempts at microbial production of the chemotherapeutic agent Taxol (paclitaxel) have met with limited success, due largely to a pathway bottleneck resulting from poor product selectivity of the first hydroxylation step, catalyzed by taxadien-5a-hydroxylase (CYP725A4). Here, we systematically investigate three methodologies, terpene cyclase engineering, P450 engineering, and hydrolase-enzyme screening to overcome this early pathway selectivity bottleneck. We demonstrate that engineering of Taxadiene Synthase, upstream of the promiscuous oxidation step, acts as a practical method for selectivity improvement. Through mutagenesis we achieve a 2.4-fold improvement in yield and selectivity for an alternative cyclization product, taxa-4(20)-11(12)-diene; and for the Taxol precursor taxadien-5α-ol, when coexpressed with CYP725A4. This works lays the foundation for the elucidation, engineering, and improved production of Taxol and early Taxol precursors.
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