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通过钴催化的非对映选择性反转氢化反应,快速合成非天然肽。

Expedient and divergent synthesis of unnatural peptides through cobalt-catalyzed diastereoselective umpolung hydrogenation.

机构信息

Engineering Research Center of Coptis Development and Utilization, Ministry of Education, College of Pharmaceutical Sciences, Southwest University, 2 Tiansheng Road, Chongqing, 400715, P. R. China.

State Key Laboratory of Medicinal Chemical Biology, Nankai University, No. 94 Wei Jin Road, Tianjin, 300071, P. R. China.

出版信息

Sci Adv. 2023 Dec 22;9(51):eadk4950. doi: 10.1126/sciadv.adk4950. Epub 2023 Dec 20.

Abstract

The development of a reliable method for asymmetric synthesis of unnatural peptides is highly desirable and particularly challenging. In this study, we present a versatile and efficient approach that uses cobalt-catalyzed diastereoselective umpolung hydrogenation to access noncanonical aryl alanine peptides. This protocol demonstrates good tolerance toward various functional groups, amino acid sequences, and peptide lengths. Moreover, the versatility of this reaction is illustrated by its successful application in the late-stage functionalization and formal synthesis of various representative chiral natural products and pharmaceutical scaffolds. This strategy eliminates the need for synthesizing chiral noncanonical aryl alanines before peptide formation, and the hydrogenation reaction does not result in racemization or epimerization. The underlying mechanism was extensively explored through deuterium labeling, control experiments, HRMS identification, and UV-Vis spectroscopy, which supported a reasonable Co/Co catalytic cycle. Notably, acetic acid and methanol serve as safe and cost-effective hydrogen sources, while indium powder acts as the terminal electron source.

摘要

开发可靠的非天然肽不对称合成方法是非常需要的,也是极具挑战性的。在本研究中,我们提出了一种通用且高效的方法,该方法使用钴催化的非对映选择性反转氢化来获得非典型芳基丙氨酸肽。该方案对各种功能基团、氨基酸序列和肽长度具有良好的耐受性。此外,该反应的多功能性通过其在各种代表性手性天然产物和药物支架的后期功能化和形式合成中的成功应用得到了证明。该策略消除了在肽形成之前合成手性非典型芳基丙氨酸的需要,并且氢化反应不会导致外消旋化或差向异构化。通过氘标记、对照实验、高分辨率质谱鉴定和紫外可见光谱,广泛探索了潜在的机制,支持了合理的 Co/Co 催化循环。值得注意的是,乙酸和甲醇可用作安全且具有成本效益的氢源,而铟粉则充当末端电子源。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ed12/10732522/240302607e7a/sciadv.adk4950-f1.jpg

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