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重组 AroL 催化的磷酸化反应用于高效合成莽草酸 3-磷酸。

Recombinant AroL-Catalyzed Phosphorylation for the Efficient Synthesis of Shikimic Acid 3-Phosphate.

机构信息

Sigma-Aldrich, Member of Merck Group, Industriestrasse 25, CH-9470, Buchs, Switzerland.

Enzymicals, Walther-Rathenau-Strasse 49a, 17489, Greifswald, Germany.

出版信息

Biotechnol J. 2018 Aug;13(8):e1700529. doi: 10.1002/biot.201700529. Epub 2018 May 11.

Abstract

Shikimic acid 3-phosphate, as a central metabolite of the shikimate pathway, is of high interest as enzyme substrate for 5-enolpyruvoyl-shikimate 3-phosphate synthase, a drug target in infectious diseases and a prime enzyme target for the herbicide glyphosate. As the important substrate shikimic acid 3-phosphate is only accessible via a chemical multi-step route, a new straightforward preparative one-step enzymatic phosphorylation of shikimate using a stable recombinant shikimate kinase has been developed for the selective phosphorylation of shikimate in the 3-position. Highly active shikimate kinase is produced by straightforward expression of a synthetic aroL gene in Escherichia coli. The time course of the shikimate kinase-catalyzed phosphorylation is investigated by H- and P-NMR, using the phosphoenolpyruvate/pyruvate kinase system for the regeneration of the ATP cofactor. This enables the development of a quantitative biocatalytic 3-phosphorylation of shikimic acid. After a standard workup procedure, a good yield of shikimic acid 3-phosphate, with high HPLC- and NMR purity, is obtained. This efficient biocatalytic synthesis of shikimic acid 3-phosphate is superior to any other method and has been successfully scaled up to multi-gram scale.

摘要

3-磷酸莽草酸作为莽草酸途径的中心代谢物,作为 5-烯醇丙酮酰莽草酸-3-磷酸合酶的酶底物具有很高的研究价值,5-烯醇丙酮酰莽草酸-3-磷酸合酶是传染病的药物靶点,也是除草剂草甘膦的主要酶靶标。由于重要的底物 3-磷酸莽草酸只能通过化学多步途径获得,因此开发了一种新的简便一步酶促磷酸化方法,使用稳定的重组莽草酸激酶对莽草酸进行 3-位选择性磷酸化。通过在大肠杆菌中直截了当地表达合成的 aroL 基因,可以生产出高活性的莽草酸激酶。通过使用磷酸烯醇丙酮酸/丙酮酸激酶系统再生 ATP 辅因子,通过 H-和 P-NMR 研究了莽草酸激酶催化的磷酸化的时程。这使得能够对莽草酸进行定量生物催化 3-磷酸化。经过标准的后处理程序,可获得具有高 HPLC 和 NMR 纯度的 3-磷酸莽草酸的良好收率。这种高效的生物催化合成 3-磷酸莽草酸优于任何其他方法,并已成功扩展到多克规模。

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