Tianjin Institute of Industrial Biotechnology, Chinese Academy of Sciences, Tianjin, 300308, P.R. China.
University of Chinese Academy of Sciences, 19 A Yuquan Road, Beijing, 100049, P.R. China.
ChemistryOpen. 2023 Jun;12(6):e202300043. doi: 10.1002/open.202300043. Epub 2023 May 30.
Strictosidine synthase (STR) catalyzes the Pictet-Spengler (PS) reaction of tryptamine and secologanin to produce strictosidine. Recent studies demonstrated that the enzyme can also catalyze the reaction of non-natural substrates to form new alkaloid skeletons. For example, the PS condensation of 1H-indole-4-ethanamine with secologanin could be promoted by the STR from Rauvolfia serpentina (RsSTR) to generate a rare class of skeletons with a seven-membered ring, namely azepino-[3,4,5-cd]-indoles, which are precursors for the synthesis of new compounds displaying antimalarial activity. In the present study, the detailed reaction mechanism of RsSTR-catalyzed formation of the rare seven-membered azepino-indole skeleton through the PS reaction was revealed at the atomic level by quantum chemical calculations. The structures of the transition states and intermediates involved in the reaction pathway were optimized, and the energetics of the complete reaction were analyzed. Based on our calculation results, the most likely pathway of the enzyme-catalyzed reaction was determined, and the rate-determining step of the reaction was clarified. The mechanistic details obtained in the present study are important in understanding the promiscuous activity of RsSTR in the formation of the rare azepino-indole skeleton molecule and are also helpful in designing STR enzymes for the synthesis of other new alkaloid skeleton molecules.
严格吲哚合酶(STR)催化色胺和卫矛醇的Pictet-Spengler(PS)反应,生成苦柯碱。最近的研究表明,该酶还可以催化非天然底物的反应,形成新的生物碱骨架。例如,1H-吲哚-4-乙胺与卫矛醇的 PS 缩合可以被蛇根木来源的 STR(RsSTR)促进,生成一类具有七元环的罕见骨架,即氮杂-[3,4,5-cd]-吲哚,这是合成具有抗疟活性的新化合物的前体。在本研究中,通过量子化学计算在原子水平上揭示了 RsSTR 催化 PS 反应形成罕见的七元氮杂吲哚骨架的详细反应机制。优化了反应途径中涉及的过渡态和中间体的结构,并分析了完整反应的能量。基于我们的计算结果,确定了酶催化反应最可能的途径,并阐明了反应的速控步骤。本研究获得的机理细节对于理解 RsSTR 在形成罕见的氮杂吲哚骨架分子中的混杂活性具有重要意义,并且有助于设计用于合成其他新生物碱骨架分子的 STR 酶。