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镍催化构建氧化吲哚类似物的多米诺环化偶联反应:机理与合成研究

Nickel-catalyzed domino annulation coupling to construct oxindole analogues: A mechanistic and synthetic investigation.

作者信息

Chen Hui, Ai Zhenkang, Jin Siyuan, Zhang Bei, Li Yaopeng, Liao Xuebin

机构信息

School of Pharmaceutical Sciences, State Key Laboratory of Molecular Oncology, Tsinghua-Peking Center for Life Science, Tsinghua University, Beijing 100084, China.

School of Chemistry and Materials Science, Institute of Advanced Materials and Flexible Electronics (IAMFE), Nanjing University of Information Science and Technology, Nanjing 210044, China.

出版信息

iScience. 2025 May 14;28(6):112672. doi: 10.1016/j.isci.2025.112672. eCollection 2025 Jun 20.

Abstract

Nickel-catalyzed reductive coupling reactions are widely used to construct molecular scaffolds; however, the mechanisms of these reactions remain less studied. Here, we present a nickel-catalyzed reductive cyclization method to construct oxindole bearing new formed C-X (X = CN, I, and P) bonds. To investigate the detailed mechanism, different types of ligand-chelated σ-alkyl-Ni(II) complexes were isolated, characterized, and allowed to conduct relevant stoichiometric and catalytic reactions. Our collected data indicated that -ligands promoted the oxidative addition and subsequent migratory insertion of the nickel complex with substrates. -ligated catalysts facilitated the reductive elimination of the σ-alkyl-Ni(II)-CN intermediate to generate annulation products and suppressed byproduct formation. Further investigations elucidated that the C-CN bond was activated by zinc with the assistance of trifluoroacetic anhydrides. Ultimately, each step of nickel catalyzed annulations was clarified and these series of mechanistic studies settle the controversy of nickel catalytic cycle.

摘要

镍催化的还原偶联反应被广泛用于构建分子骨架;然而,这些反应的机制仍较少被研究。在此,我们提出一种镍催化的还原环化方法,用于构建带有新形成的C-X(X = CN、I和P)键的氧化吲哚。为了研究详细的机制,分离、表征了不同类型的配体螯合σ-烷基-Ni(II)配合物,并使其进行相关的化学计量和催化反应。我们收集的数据表明,-配体促进了镍配合物与底物的氧化加成和随后的迁移插入。-连接的催化剂促进了σ-烷基-Ni(II)-CN中间体的还原消除,以生成环化产物并抑制副产物的形成。进一步的研究阐明,在三氟乙酸酐的协助下,锌激活了C-CN键。最终,阐明了镍催化环化的每一步,并且这一系列的机理研究解决了镍催化循环的争议。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/eb67/12159493/59e504d924a2/fx1.jpg

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