Bao Wen, Wang Xu-Jie, Wang Shao-Hua, Chen Shi-Wu, Liu Huan-Huan, Xiang Shao-Hua, Tan Bin
School of Basic Medical Sciences & School of Pharmacy, Lanzhou University, Lanzhou, 730000, China.
Shenzhen Grubbs Institute and Department of Chemistry, Southern University of Science and Technology, Shenzhen, 518055, China.
Angew Chem Int Ed Engl. 2024 Dec 9;63(50):e202412508. doi: 10.1002/anie.202412508. Epub 2024 Oct 24.
The isolation and catalytic enantioselective synthesis of configurationally stable S-stereogenic sulfonium ylides have been significant challenges in the field of asymmetric synthesis. These reactive intermediates are crucial for a variety of synthetic transformations, yet their inherent tendency towards rapid inversion at the sulfur stereocenter has hindered their practical utilization. Conventional approaches have focused on strategies that incorporate a C=S bond-containing cyclic framework to help mitigate this stereochemical lability. In this work, we present an alternative tactic that leverages the stabilizing influence of an adjacent N-atom and cyclic sulfide moiety. Exploiting a copper catalyzed enantioselective intermolecular carbene transfer reaction, structurally diverse S-stereogenic aminosulfonium ylides have been achieved in excellent yields and enantioselectivities. Experimental results indicate that the careful selection of 2-diazo-1,3-diketone precursors is crucial for achieving optimal stereoinduction in this transformation. The resulting highly enantioenriched aminosulfonium ylides allow for further stereospecific elaborations to furnish aminosulfonium ylide oxides and sulfinamide. This work expands the boundaries of chiral sulfonium ylide chemistry, providing access to a broad range of previously elusive S-stereogenic aminosulfonium ylide scaffolds.
构型稳定的S-立体异构硫叶立德的分离及催化对映选择性合成一直是不对称合成领域的重大挑战。这些反应性中间体对多种合成转化至关重要,然而它们在硫立体中心快速翻转的内在倾向阻碍了其实际应用。传统方法主要集中在采用含C=S键的环状骨架策略来减轻这种立体化学不稳定性。在这项工作中,我们提出了一种替代策略,利用相邻N原子和环状硫化物部分的稳定作用。通过铜催化的对映选择性分子间卡宾转移反应,以优异的产率和对映选择性实现了结构多样的S-立体异构氨基硫叶立德。实验结果表明,仔细选择2-重氮-1,3-二酮前体对于在该转化中实现最佳立体诱导至关重要。所得高度对映体富集的氨基硫叶立德可进一步进行立体特异性转化,以制备氨基硫叶立德氧化物和亚磺酰胺。这项工作扩展了手性硫叶立德化学的边界,提供了获得一系列以前难以捉摸的S-立体异构氨基硫叶立德骨架的途径。