Qiu Hui, Matsumoto Akira, Maruoka Keiji
Graduate School of Pharmaceutical Sciences, Kyoto University, Sakyo, Kyoto 606-8501, Japan.
School of Chemical Engineering and Light Industry, Guangdong University of Technology, Guangzhou 510006, China.
J Am Chem Soc. 2024 Dec 25;146(51):35478-35485. doi: 10.1021/jacs.4c14860. Epub 2024 Dec 12.
β-Amino acids serve as crucial building blocks for a broad range of biologically active molecules and peptides with potential as peptidomimetics. While numerous methods have been developed for the synthesis of β-amino acids, most of them require multistep preparation of specific reagents and substrates, which limits their synthetic practicality. In this regard, a homologative transformation of abundant and readily available α-amino acids would be an attractive approach for β-amino acid synthesis. Herein, we disclose the development of a sequential process to provide diverse β-amino acids from α-amino acid derivatives and commercially available phosphonium ylides via visible light photoredox catalysis. In this two-step protocol, phosphonium ylides function as a bifunctional linchpin: they act as a carbon nucleophile to forge a C-C bond in the first step and as a carbon-centered radical source for diverse modifications of the β-amino acid scaffold in the second step. The orthogonal activation of these reactivities under mild photocatalytic conditions enables a modular three-component assembly to access β-amino acids and dipeptides with high structural diversity.
β-氨基酸是众多具有生物活性的分子和肽的关键组成部分,这些分子和肽具有作为肽模拟物的潜力。虽然已经开发了许多合成β-氨基酸的方法,但大多数方法都需要对特定试剂和底物进行多步制备,这限制了它们的合成实用性。在这方面,对丰富且易于获得的α-氨基酸进行同系转化将是一种有吸引力的β-氨基酸合成方法。在此,我们报道了一种通过可见光光氧化还原催化从α-氨基酸衍生物和市售磷叶立德提供多种β-氨基酸的连续过程。在这个两步方案中,磷叶立德起着双功能关键作用:它们在第一步中作为碳亲核试剂形成C-C键,并在第二步中作为以碳为中心的自由基源对β-氨基酸支架进行各种修饰。在温和的光催化条件下对这些反应性的正交激活使得模块化的三组分组装能够获得具有高度结构多样性的β-氨基酸和二肽。