State Key Laboratory of Chemical Biology and Drug Discovery and Department of Applied Biology and Chemical Technology, The Hong Kong Polytechnic University, Hung Hom, Kowloon, Hong Kong.
Department of Chemistry, The Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong.
Nat Commun. 2021 Jan 18;12(1):412. doi: 10.1038/s41467-020-20725-9.
gem-Difluoroalkene is a bioisostere of carbonyl group for improving bioavailability of drug candidates. Herein we develop structurally diverse 2,2-difluorovinyl benzoates (BzO-DFs) as versatile building blocks for modular synthesis of gem-difluoroenol ethers (44 examples) and gem-difluoroalkenes (2 examples) by Ni-catalyzed cross coupling reactions. Diverse BzO-DFs derivatives bearing sensitive functional groups (e.g., C = C, TMS, strained carbocycles) are readily prepared from their bromodifluoroacetates and bromodifluoroketones precursors using metallic zinc as reductant. With Ni(COD) and dppf [1,1'-bis(diphenylphosphino)ferrocene] as catalyst, reactions of BzO-DFs with arylboronic acids and arylmagnesium/alkylzinc reagents afforded the desired gem-difluoroenol ethers and gem-difluoroalkenes in good yields. The Ni-catalyzed coupling reactions features highly regioselective C(vinyl)-O(benzoate) bond activation of the BzO-DFs. Results from control experiments and DFT calculations are consistent with a mechanism involving initial oxidative addition of the BzO-DFs by the Ni(0) complex. By virtue of diversity of the BzO-DFs and excellent functional group tolerance, this method is amenable to late-stage functionalization of multifunctionalized bioactive molecules.
二氟烯基是羰基的生物等排体,可提高候选药物的生物利用度。在此,我们开发了结构多样的 2,2-二氟乙烯基苯甲酸酯(BzO-DFs),作为通过 Ni 催化交叉偶联反应构建 gem-二氟烯醇醚(44 个实例)和 gem-二氟烯烃(2 个实例)的多功能构建块。含有敏感官能团(例如,C = C、TMS、张力环)的各种 BzO-DFs 衍生物可从其溴代二氟乙酸酯和溴代二氟酮前体很容易地使用金属锌作为还原剂制备。使用 Ni(COD) 和 dppf [1,1'-双(二苯基膦基)二茂铁]作为催化剂,BzO-DFs 与芳基硼酸和芳基镁/烷基锌试剂反应,以良好的收率得到所需的 gem-二氟烯醇醚和 gem-二氟烯烃。Ni 催化的偶联反应具有高度区域选择性的 BzO-DFs 的 C(乙烯基)-O(苯甲酸酯)键活化。对照实验和 DFT 计算的结果与涉及 BzO-DFs 由 Ni(0) 配合物进行初始氧化加成的机理一致。由于 BzO-DFs 的多样性和优异的官能团耐受性,该方法适用于多功能生物活性分子的后期官能化。