生物合成
尼古丁
生物
生物化学
糖基化
异源的
酶
异源表达
体外
流出
细胞生物学
生物碱
运输机
立体化学
代谢工程
合理设计
尿苷二磷酸
化学合成
化学
作者
Lijing Chang,Zhen Xu,Purong Deng,Ning Zhang,Tingrui He,Xinying Liu,Wenqi He,Anqi Zheng,Weiwei Hu,Ming Pan,Wenjuan Li,Rayko Halitschke,Ran Li,Minrui Fan,Ian T. Baldwin,Yu Zhang,Dapeng Li
出处
期刊:Cell
[Cell Press]
日期:2026-04-01
卷期号:189 (9): 2700-2713.e20
被引量:7
标识
DOI:10.1016/j.cell.2026.03.034
摘要
Nicotine, tobacco's addictive and potent insecticidal alkaloid, has shaped human history, agriculture, and the plants that produce it. However, the enzymatic steps and reaction mechanisms involved in nicotine biosynthesis remain elusive. Here, we reveal that the final coupling reaction is stabilized by glycosylation via a uridine diphosphate (UDP)-glycosyltransferase, reduced and activated by an A622, condensed through a stereoselective intermolecular Mannich-like reaction, sequentially oxidized by a berberine bridge enzyme-like (BBL), and finally deglycosylated by a β-glucosidase to yield nicotine. A 5-component metabolon assembles at vacuolar membranes to channel both nicotine biosynthesis and its transport. We reconstituted this metabolon both in vitro and heterologously in vivo. Abrogating any of these components depletes nicotine accumulations. A multidrug and toxic compound extrusion (MATE) transporter is essential for efficiently engineering nicotine production in heterologous plant species, which confers pest resistance. This work completes the nicotine biosynthesis pathway and provides critical insights into the intermolecular Mannich-like reaction, a fundamental mechanism for scaffold formation in many plant alkaloids.
科研通智能强力驱动
Strongly Powered by AbleSci AI