Facile Asymmetric Syntheses of Non-Natural Amino Acid (S)-Cyclopropylglycine by the Developed NADH-Driven Biocatalytic System

Catalysts Pub Date : 2024-05-13 DOI:10.3390/catal14050321
Qian Tang, Shanshan Li, Liping Zhou, Lili Sun, Juan Xin, Wei Li
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Abstract

A self-sufficient bifunctional enzyme integrating reductive amination and coenzyme regeneration activities was developed and successfully employed to synthesize (S)-cyclopropylglycine with an improved reaction rate 2.1-fold over the native enzymes and a short bioconversion period of 6 h at a high substrate concentration of 120 g·L−1 and space–time yield of (S)-cyclopropylglycine up to 377.3 g·L−1·d−1, higher than that of any previously reported data. Additionally, (S)-cyclopropylglycine could be continuously synthesized for 90 h with the enzymes packed in a dialysis tube, providing 634.6 g of (S)-cyclopropylglycine with >99.5% ee and over 95% conversion yield up to 12 changes. These results confirmed that the newly developed NADH-driven biocatalytic system could be utilized as a self-sufficient biocatalyst for industrial application in the synthesis of (S)-cyclopropylglycine, which provides a chiral center and cyclopropyl fragment for the frequent synthesis of preclinical/clinical drug molecules.
利用开发的 NADH 驱动生物催化系统轻松不对称合成非天然氨基酸 (S)- 环丙基甘氨酸
开发并成功应用了一种自给自足的双功能酶,该酶集成了还原胺化和辅酶再生活性,合成(S)-环丙基甘氨酸的反应速率比原生酶提高了2.1倍,在底物浓度为120 g-L-1的高浓度条件下,生物转化周期短至6小时,(S)-环丙基甘氨酸的时空产率高达377.3 g-L-1-d-1,高于之前报道的任何数据。此外,将酶包装在透析管中可连续合成(S)-环丙基甘氨酸 90 小时,可提供 634.6 克(S)-环丙基甘氨酸,ee>99.5%,转化率超过 95%,可变化 12 次。这些结果证实,新开发的 NADH 驱动生物催化系统可作为一种自给自足的生物催化剂用于(S)-环丙基甘氨酸的工业合成,为临床前/临床药物分子的频繁合成提供手性中心和环丙基片段。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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