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在液-液两相微反应体系中全细胞生物催化合成 S-(4-氯苯基)-(吡啶-2-基)甲醇。

Whole-cell biocatalytic synthesis of S-(4-chlorophenyl)-(pyridin-2-yl) methanol in a liquid-liquid biphasic microreaction system.

机构信息

The State Key Lab of Chemical Engineering, Department of Chemical Engineering, Tsinghua University, Beijing 100084, China.

Tianjin Institute of Industrial Biotechnology, Chinese Academy of Sciences, Tianjin 300308, China.

出版信息

Bioresour Technol. 2021 Jun;330:125022. doi: 10.1016/j.biortech.2021.125022. Epub 2021 Mar 20.

Abstract

This work aims to synthesize S-(4-chlorophenyl)-(pyridin-2-yl) methanol (S-CPMA) in a green, economic, and efficient way. In the water-cyclohexane liquid-liquid system, recombinant Escherichia coli (E. coli) was used as a whole-cell catalyst and retained > 60% of its catalytic activity after five reuse cycles. In situ accumulation of the substrate/product in the organic phase effectively improves substrate tolerance and reduces product inhibition and toxicity. Meanwhile, a microreaction system consisting of membrane dispersion and three-dimensional (3D) bending-microchannel was developed to successfully generate droplet swarms with an average diameter of 30 μm. Large specific surface area provided high mass transfer efficiency between phases. While the analogous reaction in a traditional stirred tank required > 270 min to achieve a yield of > 99%, in this biphasic microreaction system, the yield reached 99.6% with a high enantiomeric excess (ee) of > 99% in only 80 min. Efficient synthesis was achieved by reducing the time by 70%.

摘要

本工作旨在绿色、经济、高效地合成 S-(4-氯苯基)-(吡啶-2-基)甲醇(S-CPMA)。在水-环己烷液-液体系中,重组大肠杆菌(E. coli)被用作全细胞催化剂,在重复使用 5 次后仍保持 >60%的催化活性。底物/产物在有机相中原位积累,有效地提高了底物耐受性,降低了产物抑制和毒性。同时,开发了一种由膜分散和三维(3D)弯曲微通道组成的微反应系统,成功生成了平均直径为 30μm 的液滴群。大的比表面积提供了相间的高效传质效率。而在传统的搅拌釜中进行类似的反应需要 >270min 才能达到 >99%的产率,在这个两相微反应系统中,在 80min 内即可达到 99.6%的产率和 >99%的高对映体过量(ee)。通过将时间缩短 70%,实现了高效合成。

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