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全合成微管蛋白结合生物碱秋水仙碱。

Total Biosynthesis of the Tubulin-Binding Alkaloid Colchicine.

机构信息

Department of Chemical Engineering, Stanford University, Stanford, California 94305, United States.

Howard Hughes Medical Institute, Stanford, California 94305, United States.

出版信息

J Am Chem Soc. 2021 Nov 24;143(46):19454-19465. doi: 10.1021/jacs.1c08659. Epub 2021 Nov 15.

Abstract

Colchicine () is a bioactive plant alkaloid from and species that is used as a pharmaceutical treatment for inflammatory diseases, including gouty arthritis and familial Mediterranean fever. The activity of this alkaloid is attributed to its ability to bind tubulin dimers and inhibit microtubule assembly, which not only promotes anti-inflammatory effects, but also makes colchicine a potent mitotic poison. The biochemical origins of colchicine biosynthesis have been investigated for over 50 years, but only recently has the underlying enzymatic machinery become clear. Here, we report the discovery of multiple pathway enzymes from that allows for the reconstitution of a complete metabolic route to . This includes three enzymes that process a previously established tropolone-containing intermediate into via tailoring of the nitrogen atom. We further demonstrate the total biosynthesis of enantiopure (-)- from primary metabolites via heterologous production in a model plant, thus enabling future efforts for the metabolic engineering of this medicinal alkaloid. Additionally, our results provide insight into the timing and tissue specificity for the late stage modifications required in colchicine biosynthesis, which are likely connected to the biological functions for this class of medicinal alkaloids in native producing plants.

摘要

秋水仙素()是一种来源于百合科和秋水仙科植物的生物活性植物生物碱,可用作治疗炎症性疾病的药物,包括痛风性关节炎和家族性地中海热。这种生物碱的活性归因于它能够结合微管蛋白二聚体并抑制微管组装,这不仅促进了抗炎作用,而且使秋水仙素成为一种有效的有丝分裂毒物。秋水仙素生物合成的生化起源已经研究了 50 多年,但直到最近,其潜在的酶促机制才变得清晰。在这里,我们报告了从秋水仙科植物中发现的多种途径酶,这些酶允许重新构建一个完整的代谢途径来合成秋水仙素。这包括三种酶,它们通过对氮原子的修饰,将先前建立的含三酮的中间产物加工成秋水仙素。我们进一步通过模型植物中的异源生产证明了对映纯(-)-秋水仙素的全生物合成,从而为该药用生物碱的代谢工程提供了未来的努力方向。此外,我们的结果为秋水仙素生物合成中晚期修饰所需的时间和组织特异性提供了深入了解,这可能与该类药用生物碱在天然产生植物中的生物学功能有关。

相似文献

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Total Biosynthesis of the Tubulin-Binding Alkaloid Colchicine.全合成微管蛋白结合生物碱秋水仙碱。
J Am Chem Soc. 2021 Nov 24;143(46):19454-19465. doi: 10.1021/jacs.1c08659. Epub 2021 Nov 15.
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