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作为碳-碳键形成酶的微生物醛缩酶——未知的宝藏与新进展

Microbial aldolases as C-C bonding enzymes--unknown treasures and new developments.

作者信息

Samland Anne K, Sprenger Georg A

机构信息

Institut für Mikrobiologie, Universität Stuttgart, Germany.

出版信息

Appl Microbiol Biotechnol. 2006 Jul;71(3):253-64. doi: 10.1007/s00253-006-0422-6. Epub 2006 Apr 14.

Abstract

Aldolases are a specific group of lyases that catalyze the reversible stereoselective addition of a donor compound (nucleophile) onto an acceptor compound (electrophile). Whereas most aldolases are specific for their donor compound in the aldolization reaction, they often tolerate a wide range of aldehydes as acceptor compounds. C-C bonding by aldolases creates stereocenters in the resulting aldol products. This makes aldolases interesting tools for asymmetric syntheses of rare sugars or sugar-derived compounds as iminocyclitols, statins, epothilones, and sialic acids. Besides the well-known fructose 1,6-bisphosphate aldolase, other aldolases of microbial origin have attracted the interest of synthetic bio-organic chemists in recent years. These are either other dihydroxyacetone phosphate aldolases or aldolases depending on pyruvate/phosphoenolpyruvate, glycine, or acetaldehyde as donor substrate. Recently, an aldolase that accepts dihydroxyacetone or hydroxyacetone as a donor was described. A further enlargement of the arsenal of available chemoenzymatic tools can be achieved through screening for novel aldolase activities and directed evolution of existing aldolases to alter their substrate- or stereospecifities. We give an update of work on aldolases, with an emphasis on microbial aldolases.

摘要

醛缩酶是裂合酶中的一组特定酶类,可催化供体化合物(亲核试剂)向受体化合物(亲电试剂)进行可逆的立体选择性加成反应。尽管大多数醛缩酶在羟醛缩合反应中对其供体化合物具有特异性,但它们通常能耐受多种醛类作为受体化合物。醛缩酶形成碳 - 碳键的过程会在生成的羟醛产物中产生立体中心。这使得醛缩酶成为不对称合成稀有糖或糖衍生化合物(如亚氨基环醇、他汀类药物、埃坡霉素和唾液酸)的有趣工具。除了著名的果糖 -1,6- 二磷酸醛缩酶外,近年来,其他微生物来源的醛缩酶也引起了合成生物有机化学家的关注。这些醛缩酶要么是其他磷酸二羟丙酮醛缩酶,要么是以丙酮酸 /磷酸烯醇丙酮酸、甘氨酸或乙醛作为供体底物的醛缩酶。最近,还报道了一种以二羟基丙酮或羟基丙酮作为供体的醛缩酶。通过筛选新型醛缩酶活性以及对现有醛缩酶进行定向进化以改变其底物特异性或立体特异性,可以进一步扩充可用的化学酶工具库。我们提供了关于醛缩酶研究工作的最新进展,重点是微生物醛缩酶。

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