Shenzhen Grubbs Institute and Department of Chemistry, Guangdong Provincial Key Laboratory of Catalysis, Southern University of Science and Technology, Shenzhen, China.
Academy for Advanced Interdisciplinary Studies and Department of Chemistry, Southern University of Science and Technology, Shenzhen, China.
Nature. 2023 Jun;618(7964):294-300. doi: 10.1038/s41586-023-05950-8. Epub 2023 Mar 20.
Chiral amines are commonly used in the pharmaceutical and agrochemical industries. The strong demand for unnatural chiral amines has driven the development of catalytic asymmetric methods. Although the N-alkylation of aliphatic amines with alkyl halides has been widely adopted for over 100 years, catalyst poisoning and unfettered reactivity have been preventing the development of a catalyst-controlled enantioselective version. Here we report the use of chiral tridentate anionic ligands to enable the copper-catalysed chemoselective and enantioconvergent N-alkylation of aliphatic amines with α-carbonyl alkyl chlorides. This method can directly convert feedstock chemicals, including ammonia and pharmaceutically relevant amines, into unnatural chiral α-amino amides under mild and robust conditions. Excellent enantioselectivity and functional-group tolerance were observed. The power of the method is demonstrated in a number of complex settings, including late-stage functionalization and in the expedited synthesis of diverse amine drug molecules. The current method indicates that multidentate anionic ligands are a general solution for overcoming transition-metal-catalyst poisoning.
手性胺在制药和农用化学品行业中被广泛应用。对非天然手性胺的强烈需求推动了催化不对称方法的发展。尽管用卤代烷烃对脂肪族胺进行 N-烷基化已有 100 多年的历史,但催化剂中毒和不受控制的反应性一直阻碍着催化剂控制的对映选择性版本的发展。在这里,我们报告了使用手性三齿阴离子配体来实现铜催化的对映选择性和化学选择性 N-烷基化脂肪族胺与α-羰基烷基氯。该方法可以在温和、坚固的条件下直接将原料化学品(包括氨和药用相关胺)转化为非天然手性α-氨基酰胺。观察到优异的对映选择性和官能团耐受性。该方法在许多复杂环境中得到了证明,包括晚期功能化和多样化胺药物分子的快速合成。目前的方法表明,多齿阴离子配体是克服过渡金属催化剂中毒的通用解决方案。