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开发一种多酶级联反应,从 L-精氨酸合成反式-3-羟基-L-脯氨酸。

Development of a multi-enzymatic cascade reaction for the synthesis of trans-3-hydroxy-L-proline from L-arginine.

机构信息

Research Institute for Science and Engineering, Waseda University, 3-4-1 Ohkubo, Shinjuku-ku, Tokyo, 169-8555, Japan.

Department of Applied Chemistry, Faculty of Science and Engineering, Waseda University, 3-4-1 Ohkubo, Shinjuku-ku, Tokyo, 169-8555, Japan.

出版信息

Appl Microbiol Biotechnol. 2016 Jan;100(1):243-53. doi: 10.1007/s00253-015-6992-4. Epub 2015 Sep 28.

Abstract

Naturally occurring L-hydroxyproline in its four regio- and stereoisomeric forms has been explored as a possible precursor for pharmaceutical agents, yet the selective synthesis of trans-3-hydroxy-L-proline has not been achieved. Our aim was to develop a novel biocatalytic asymmetric method for the synthesis of trans-3-hydroxy-L-proline. So far, we focused on the rhizobial arginine catabolic pathway: arginase and ornithine cyclodeaminase are involved in L-arginine degradation to L-proline via L-ornithine. We hypothesized that trans-3-hydroxy-L-proline should be synthesized if arginase and ornithine cyclodeaminase act on (2S,3S)-3-hydroxyarginine and (2S,3S)-3-hydroxyornithine, respectively. To test this hypothesis, we cloned the genes of L-arginine 3-hydroxylase, arginase, and ornithine cyclodeaminase and overexpressed them in Escherichia coli, with subsequent enzyme purification. After characterization and optimization of each enzyme, a three-step procedure involving L-arginine 3-hydroxylase, arginase, and ornithine cyclodeaminase (in this order) was performed using L-arginine as a starting substrate. At the second step of the procedure, putative hydroxyornithine was formed quantitatively by arginase from (2S,3S)-3-hydroxyarginine. Nuclear magnetic resonance and chiral high-performance liquid chromatography analyses revealed that the absolute configuration of this compound was (2S,3S)-3-hydroxyornithine. In the last step of the procedure, trans-3-hydroxy-L-proline was synthesized selectively by ornithine cyclodeaminase from (2S,3S)-3-hydroxyornithine. Thus, we successfully developed a novel synthetic route, comprised of three reactions, to convert L-arginine to trans-3-hydroxy-L-proline. The excellent selectivity makes this procedure simpler and more efficient than conventional chemical synthesis.

摘要

天然存在的 L-羟脯氨酸的四种区域和立体异构形式已被探索作为药物制剂的潜在前体,但尚未实现反式-3-羟脯氨酸的选择性合成。我们的目标是开发一种新的生物催化不对称方法来合成反式-3-羟脯氨酸。到目前为止,我们专注于根瘤菌精氨酸代谢途径:精氨酸酶和鸟氨酸环脒酶参与 L-精氨酸通过 L-鸟氨酸降解为 L-脯氨酸。我们假设,如果精氨酸酶和鸟氨酸环脒酶分别作用于(2S,3S)-3-羟脯氨酸和(2S,3S)-3-羟鸟氨酸,就应该合成反式-3-羟脯氨酸。为了验证这一假设,我们克隆了 L-精氨酸 3-羟化酶、精氨酸酶和鸟氨酸环脒酶的基因,并在大肠杆菌中过表达,随后进行酶的纯化。在对每种酶进行表征和优化后,使用 L-精氨酸作为起始底物,进行了涉及 L-精氨酸 3-羟化酶、精氨酸酶和鸟氨酸环脒酶(按此顺序)的三步程序。在该程序的第二步中,精氨酸酶从(2S,3S)-3-羟脯氨酸定量形成假定的羟鸟氨酸。核磁共振和手性高效液相色谱分析表明,该化合物的绝对构型为(2S,3S)-3-羟鸟氨酸。在该程序的最后一步中,鸟氨酸环脒酶从(2S,3S)-3-羟鸟氨酸选择性合成反式-3-羟脯氨酸。因此,我们成功开发了一种由三个反应组成的新型合成途径,将 L-精氨酸转化为反式-3-羟脯氨酸。该方法的优异选择性使其比传统的化学合成更简单、更高效。

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