紫杉烷
烟草
紫杉醇
生物合成
红豆杉
生物化学
化学
酶
代谢途径
生物
紫杉类
伊波希隆
乙酰化
细胞生物学
信号转导
微管
裂解酶
穿心莲
药理学
体外
计算生物学
作者
Changkang Li,Xincheng Sun,Ridao Chen,Kebo Xie,Dawei Chen,Jimei Liu,Jungui Dai
出处
期刊:
[Cold Spring Harbor Laboratory]
日期:2026-04-30
标识
DOI:10.64898/2026.04.28.721278
摘要
Abstract The prevalence of naturally occurring C13-acetoxy taxanes, together with the presence of a native C13-acetyltransferase in yew trees, suggests that the natural biosynthetic pathway for paclitaxel may involve a cryptic C13 α - O -deacetylation step. However, whether a putative taxane C13 α - O -deacetylase (T13dA) acts in the pathway of paclitaxel biosynthesis remains elusive. Here we functionally characterized two novel taxane C13 α - O -deacetylases (T13dA1 and T13dA2) from Taxus × media cell cultures, providing experimental evidence for the molecular and biochemical plausibility of C13 α - O -deacetylation in paclitaxel biosynthesis in Taxus species. Also, we identified a previously uncharacterized bifunctional taxane C7 β - O -, C9 α - O -deacetylase, designated T79dA, which demonstrates the functional promiscuity by enabling stepwise deacetylation at taxane C7 β and C9 α positions. Furthermore, T7dA1, a novel taxane C7 β - O -deacetylase with higher activity than the reported T7dA was discovered and characterized here. Moreover, we reconstituted two new pathways (an 18-gene and a 19-gene pathway) enabled by the integration of a C13 α - O -acetylation-deacetylation module for the de novo biosynthesis of baccatin III in Nicotiana benthamiana leaves. These pathways with the previously established 17-gene baccatin III pathway, further allow paclitaxel biosynthesis to be a network. Our reconstituted 19-gene pathway achieves a baccatin III yield of up to 23 μ g g -1 dried weight (DW) in N. benthamiana leaves, which is comparable to the yield reported for the 17-gene pathway. This work facilitates a better understanding, elucidation and reconstruction of metabolic network of paclitaxel biosynthetic pathway, and provides new enzymes and strategies for artificial pathway reconstruction and efficiently bio-chemical production of paclitaxel.
科研通智能强力驱动
Strongly Powered by AbleSci AI