Mita Tsuyoshi, Takano Hideaki, Hayashi Hiroki, Kanna Wataru, Harabuchi Yu, Houk K N, Maeda Satoshi
Institute for Chemical Reaction Design and Discovery (WPI-ICReDD), Hokkaido University, Kita 21, Nishi 10, Kita-ku, Sapporo, Hokkaido 001-0021, Japan.
JST, ERATO Maeda Artificial Intelligence in Chemical Reaction Design and Discovery Project, Kita 10, Nishi 8, Kita-ku, Sapporo, Hokkaido 060-0810, Japan.
J Am Chem Soc. 2022 Dec 21;144(50):22985-23000. doi: 10.1021/jacs.2c09830. Epub 2022 Nov 30.
Pericyclic reactions, which involve cyclic concerted transition states without ionic or radical intermediates, have been extensively studied since their definition in the 1960s, and the famous Woodward-Hoffmann rules predict their stereoselectivity and chemoselectivity. Here, we describe the application of a fully automated reaction-path search method, that is, the artificial force induced reaction (AFIR), to trace an input compound back to reasonable starting materials through thermally allowed pericyclic reactions via product-based quantum-chemistry-aided retrosynthetic analysis (QCaRA) without using any a priori experimental knowledge. All categories of pericyclic reactions, including cycloadditions, ene reactions, group-transfer, cheletropic, electrocyclic, and sigmatropic reactions, were successfully traced back via concerted reaction pathways, and starting materials were computationally obtained with the correct stereochemistry. Furthermore, AFIR was used to predict whether the identified reaction pathway can be expected to occur in good yield relative to other possible reactions of the identified starting material. In order to showcase its practical utility, this state-of-the-art technology was also applied to the retrosynthetic analysis of a natural product with a relatively high number of atoms (52 atoms: endiandric acid C methyl ester), which was first synthesized by Nicolaou in 1982 and provided the corresponding starting polyenes with the correct stereospecificity via three pericyclic reaction cascades (one Diels-Alder reaction as well as 6π and 8π electrocyclic reactions). Moreover, not only systems that obey the Woodward-Hoffmann rules but also systems that violate these rules, such as those recently calculated by Houk, can be retrosynthesized accurately.
周环反应涉及无离子或自由基中间体的环状协同过渡态,自20世纪60年代被定义以来就受到了广泛研究,著名的伍德沃德 - 霍夫曼规则预测了它们的立体选择性和化学选择性。在此,我们描述了一种全自动反应路径搜索方法,即人工力诱导反应(AFIR)的应用,通过基于产物的量子化学辅助逆合成分析(QCaRA),利用热允许的周环反应将输入化合物追溯到合理的起始原料,而无需使用任何先验实验知识。所有类型的周环反应,包括环加成反应、烯反应、基团转移反应、螯合反应、电环化反应和迁移反应,都通过协同反应路径成功追溯,并且通过计算获得了具有正确立体化学的起始原料。此外,AFIR还用于预测相对于所确定起始原料的其他可能反应,所确定的反应路径是否有望以良好的产率发生。为了展示其实际效用,这项先进技术还应用于对一种具有相对较多原子数(52个原子:恩地酸C甲酯)的天然产物的逆合成分析,该天然产物于1982年由 Nicolaou首次合成,并通过三个周环反应级联(一个狄尔斯 - 阿尔德反应以及6π和8π电环化反应)提供了具有正确立体专一性的相应起始多烯。此外,不仅遵循伍德沃德 - 霍夫曼规则的体系,而且违反这些规则的体系,例如最近由Houk计算的那些体系,都可以准确地进行逆合成。