Institute of Microbial Chemistry (BIKAKEN), Tokyo, 3-14-23 Kamiosaki, Shinagawa-ku, Tokyo, 141-0021, Japan.
Angew Chem Int Ed Engl. 2018 Jan 15;57(3):818-822. doi: 10.1002/anie.201711143. Epub 2017 Dec 14.
β-Amino acid incorporation has emerged as a promising approach to enhance the stability of parent peptides and to improve their biological activity. Owing to the lack of reliable access to β -amino acids in a setting suitable for peptide synthesis, most contemporary research efforts focus on the use of β - and certain β -amino acids. Herein, we report the catalytic asymmetric synthesis of β -amino acids and their incorporation into peptides by Fmoc-based solid-phase peptide synthesis (Fmoc-SPPS). A quaternary carbon center was constructed by the palladium-catalyzed decarboxylative allylation of 4-substituted isoxazolidin-5-ones. The N-O bond in the products not only acts as a traceless protecting group for β-amino acids but also undergoes amide formation with α-ketoacids derived from Fmoc-protected α-amino acids, thus providing expeditious access to α-β -dipeptides ready for Fmoc-SPPS.
β-氨基酸掺入已成为一种有前途的方法,可以提高母体肽的稳定性并提高其生物活性。由于在适合肽合成的环境中无法可靠地获得β-氨基酸,因此大多数当前的研究都集中在使用β-和某些β-氨基酸上。在此,我们报告了β-氨基酸的催化不对称合成及其通过 Fmoc-固相肽合成(Fmoc-SPPS)掺入肽中。通过钯催化的 4-取代异恶唑啉-5-酮的脱羧烯丙基化反应构建了季碳原子中心。产物中的 N-O 键不仅可以作为β-氨基酸的无痕迹保护基团,还可以与 Fmoc 保护的α-氨基酸衍生的α-酮酸形成酰胺,从而快速获得适合 Fmoc-SPPS 的α-β-二肽。