Chen Shanglin, Wang Ya-Nan, Xie Jinhui, Li Wangyang, Ye Mingxing, Ma Xingxing, Yang Kai, Li Shijun, Lan Yu, Song Qiuling
Key Laboratory of Molecule Synthesis and Function Discovery, Fujian Province University, College of Chemistry at Fuzhou University, Fuzhou, Fujian, China.
Chongqing Key Laboratory of Theoretical and Computational Chemistry, School of Chemistry and Chemical Engineering, Chongqing University, Chongqing, China.
Nat Commun. 2024 Jun 28;15(1):5479. doi: 10.1038/s41467-024-49870-1.
1,2-Difunctionalization of alkynes offers a straightforward approach to access polysubstituted alkenes. However, simultaneous multi-component cascade transformations including difunctionalization of two alkynes with both syn- and anti-selectivity in one catalyst system is undeveloped and proves to be a significant challenge. Herein, we report a Nickel-catalyzed four-component reaction to access polysubstituted 1,3-dienes using two terminal alkynes, aryl boroxines, and perfluoroalkyl iodides, wherein the reaction forms three new C-C bonds in a single vessel and serve as a modular strategy to access polysubstituted 1,3-dienes with excellent chemoselectivity, good regioselectivity and exclusive stereoselectivity. Control experiments reveal the plausible reaction mechanism and DFT calculations explain the cause for the formation of this unusual four-component reaction. Furthermore, we successfully incorporate two biologically active units into 1,2,3,4-tetrasubstituted 1,3-dienes, which greatly increases the diversity of molecular scaffolds and brings more potential values to medicinal chemistry, the synthetic utility of our protocol is further demonstrated by the late-stage transformations.
炔烃的1,2-双官能化提供了一种直接合成多取代烯烃的方法。然而,在一个催化体系中同时进行包括两个炔烃的双官能化且具有顺式和反式选择性的多组分串联转化尚未得到发展,并且被证明是一项重大挑战。在此,我们报道了一种镍催化的四组分反应,该反应使用两个末端炔烃、芳基硼酸酯和全氟烷基碘化物来合成多取代的1,3-二烯,其中该反应在单个反应容器中形成三个新的C-C键,并且作为一种模块化策略以优异的化学选择性、良好的区域选择性和唯一的立体选择性来合成多取代的1,3-二烯。对照实验揭示了可能的反应机理,并且密度泛函理论计算解释了这种不寻常的四组分反应形成的原因。此外,我们成功地将两个生物活性单元引入到1,2,3,4-四取代的1,3-二烯中,这极大地增加了分子骨架的多样性,并为药物化学带来了更多潜在价值,我们方法的合成实用性通过后期转化进一步得到证明。