Tang Haoyu, Tang Yijie, Kurnikov Igor V, Liao Hsuan-Jen, Chan Nei-Li, Kurnikova Maria G, Guo Yisong, Chang Wei-Chen
Department of Chemistry, North Carolina State University, Raleigh, NC.
Department of Chemistry, Carnegie Mellon University, Pittsburgh, PA.
ACS Catal. 2021 Jun 18;11(12):7186-7192. doi: 10.1021/acscatal.1c01150. Epub 2021 Jun 6.
Nature has developed complexity-generating reactions within natural product biosynthetic pathways. However, direct utilization of these pathways to prepare compound libraries remains challenging due to limited substrate scopes, involvement of multiple-step reactions, and moderate robustness of these sophisticated enzymatic transformations. Synthetic chemistry, on the other hand, offers an alternative approach to prepare natural product analogs. However, owing to complex and diverse functional groups appended on the targeted molecules, dedicated design and development of synthetic strategies are typically required. Herein, by leveraging the power of chemo-enzymatic synthesis, we report an approach to bridge the gap between biological and synthetic strategies in the preparation of quinolone alkaloid analogs. Leading by analysis, the predicted substrate analogs were chemically synthesized. The AsqJ-catalyzed asymmetric epoxidation of these substrate analogues was followed by an Lewis Acid-triggered ring contraction to complete the viridicatin formation. We evaluated the robustness of this method in gram-scale reactions. Lastly, through chemoenzymatic cascades, a library of quinolone alkaloids is effectively prepared.
自然界在天然产物生物合成途径中发展出了产生复杂性的反应。然而,由于底物范围有限、多步反应的参与以及这些复杂酶促转化的适度稳健性,直接利用这些途径来制备化合物库仍然具有挑战性。另一方面,合成化学提供了一种制备天然产物类似物的替代方法。然而,由于目标分子上连接有复杂多样的官能团,通常需要专门设计和开发合成策略。在此,通过利用化学酶促合成的力量,我们报道了一种在制备喹诺酮生物碱类似物时弥合生物和合成策略之间差距的方法。通过分析引领,化学合成了预测的底物类似物。这些底物类似物经AsqJ催化的不对称环氧化反应,随后进行路易斯酸引发的环收缩反应以完成绿胶霉素的形成。我们评估了该方法在克级反应中的稳健性。最后,通过化学酶促级联反应,有效地制备了一个喹诺酮生物碱库。