Liu Chengwei, Ji Chong-Lei, Hong Xin, Szostak Michal
Department of Chemistry, Rutgers University, 73 Warren Street, Newark, NJ, 07102, USA.
Department of Chemistry, Zhejiang University, Hangzhou, 310027, China.
Angew Chem Int Ed Engl. 2018 Dec 17;57(51):16721-16726. doi: 10.1002/anie.201810145. Epub 2018 Nov 21.
Decarbonylative borylation of carboxylic acids is reported. Carbon electrophiles are generated directly after reagent-enabled decarbonylation of the in situ accessible sterically-hindered acyl derivative of a carboxylic acid under catalyst controlled conditions. The scope and the potential impact of this method are demonstrated in the selective borylation of a variety of aromatics (>50 examples). This strategy was used in the late-stage derivatization of pharmaceuticals and natural products. Computations reveal the mechanistic details of the unprecedented C-O bond activation of carboxylic acids. By circumventing the challenging decarboxylation, this strategy provides a general synthetic platform to access arylpalladium species for a wide array of bond formations from abundant carboxylic acids. The study shows a powerful combination of experiment and computation to predict decarbonylation selectivity.
报道了羧酸的脱羰硼化反应。在催化剂控制的条件下,羧酸原位可及的空间位阻酰基衍生物经试剂介导的脱羰反应后直接生成碳亲电试剂。该方法的适用范围及其潜在影响在多种芳烃的选择性硼化反应中得到了证明(>50个实例)。该策略被用于药物和天然产物的后期衍生化。计算揭示了羧酸前所未有的C-O键活化的机理细节。通过规避具有挑战性的脱羧反应,该策略提供了一个通用的合成平台,可从丰富的羧酸中获取芳基钯物种以进行广泛的键形成反应。该研究展示了实验与计算相结合以预测脱羰选择性的强大作用。