Key Laboratory of Chemical Genomics, School of Chemical Biology and Biotechnology, Shenzhen Graduate School, Peking University , Shenzhen 518055, China.
J Am Chem Soc. 2018 Feb 21;140(7):2693-2699. doi: 10.1021/jacs.8b00380. Epub 2018 Feb 5.
Cross-coupling of organoboron compounds with electrophiles (Suzuki-Miyaura reaction) has greatly advanced C-C bond formation and has been well received in medicinal chemistry. During the past 50 years, transition metals have played a central role throughout the catalytic cycle of this important transformation. In this process, chemoselectivity among multiple carbon-halogen bonds is a common challenge. In particular, selective oxidative addition of transition metals to alkyl halides rather than aryl halides is difficult due to unfavorable transition states and bond strengths. We describe a new approach that uses a single organic sulfide catalyst to activate both C(sp) halides and arylboronic acids via a zwitterionic boron "ate" intermediate. This "ate" species undergoes a 1,2-metalate shift to afford Suzuki coupling products using benzyl chlorides and arylboronic acids. Various diaryl methane analogues can be prepared, including those with complex and biologically active motifs. The reactions proceed under transition-metal-free conditions, and C(sp) halides, including aryl bromides and iodides, are unaffected. The orthogonal chemoselectivity is demonstrated in the streamlined synthesis of highly functionalized diaryl methane scaffolds using multi-halogenated substrates. Preliminary mechanistic experiments suggest both the sulfonium salt and the sulfur ylide are involved in the reaction, with the formation of sulfonium salt being the slowest step in the overall catalytic cycle.
硼酸化合物与亲电试剂的交叉偶联(铃木-宫浦反应)极大地促进了 C-C 键的形成,在药物化学中得到了广泛的应用。在过去的 50 年中,过渡金属在这一重要转化的催化循环中发挥了核心作用。在这个过程中,多个碳卤键之间的化学选择性是一个常见的挑战。特别是,由于不利的过渡态和键强度,过渡金属对烷基卤化物而不是芳基卤化物的选择性氧化加成是困难的。我们描述了一种新的方法,该方法使用单个有机硫化物催化剂通过两性硼“ate”中间体来激活 C(sp)卤化物和芳基硼酸。这种“ate”物种经历 1,2-金属转移,从而使用苄基氯化物和芳基硼酸得到铃木偶联产物。可以制备各种二芳基甲烷类似物,包括具有复杂和生物活性的结构单元。反应在无过渡金属条件下进行,C(sp)卤化物,包括芳基溴化物和碘化物,不受影响。在使用多卤代底物的高度官能化二芳基甲烷支架的流线型合成中,证明了正交化学选择性。初步的机理实验表明,反应涉及锍盐和硫叶立德,其中锍盐的形成是整个催化循环中最慢的步骤。