Fachbereich Chemie, Philipps-Universität Marburg, Marburg, Germany.
Department of Chemistry and Biochemistry, Oberlin College, Oberlin, OH, USA.
Nat Chem. 2022 May;14(5):566-573. doi: 10.1038/s41557-022-00895-3. Epub 2022 Apr 4.
α-Amino acids are essential for life as building blocks of proteins and components of diverse natural molecules. In both industry and academia, the incorporation of unnatural amino acids is often desirable for modulating chemical, physical and pharmaceutical properties. Here we report a protocol for the economical and practical synthesis of optically active α-amino acids based on an unprecedented stereocontrolled 1,3-nitrogen shift. Our method employs abundant and easily accessible carboxylic acids as starting materials, which are first connected to a nitrogenation reagent, followed by a highly regio- and enantioselective ruthenium- or iron-catalysed C(sp)-H amination. This straightforward method displays a very broad scope, providing rapid access to optically active α-amino acids with aryl, allyl, propargyl and alkyl side chains, and also permits stereocontrolled late-stage amination of carboxylic-acid-containing drugs and natural products.
α-氨基酸是生命的必需物质,是蛋白质的组成部分,也是各种天然分子的组成部分。在工业和学术界,通常希望引入非天然氨基酸来调节化学、物理和药物性质。在这里,我们报告了一种基于前所未有的立体控制 1,3-氮迁移的经济实用的光学活性 α-氨基酸合成方法。我们的方法以丰富且易于获得的羧酸作为起始原料,首先将其与氮化物试剂连接,然后进行高区域和对映选择性的钌或铁催化的 C(sp 3 )-H 氨化反应。这种直接的方法具有非常广泛的适用性,能够快速获得具有芳基、烯丙基、炔丙基和烷基侧链的光学活性 α-氨基酸,还允许对含有羧酸的药物和天然产物进行立体控制的后期氨化。