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合成级联是通过将生物催化剂与人工金属酶结合而实现的。

Synthetic cascades are enabled by combining biocatalysts with artificial metalloenzymes.

机构信息

Department of Chemistry, University of Basel, Spitalstrasse 51, CH-4056 Basel, Switzerland.

出版信息

Nat Chem. 2013 Feb;5(2):93-9. doi: 10.1038/nchem.1498. Epub 2012 Nov 25.

Abstract

Enzymatic catalysis and homogeneous catalysis offer complementary means to address synthetic challenges, both in chemistry and in biology. Despite its attractiveness, the implementation of concurrent cascade reactions that combine an organometallic catalyst with an enzyme has proven challenging because of the mutual inactivation of both catalysts. To address this, we show that incorporation of a d(6)-piano stool complex within a host protein affords an artificial transfer hydrogenase (ATHase) that is fully compatible with and complementary to natural enzymes, thus enabling efficient concurrent tandem catalysis. To illustrate the generality of the approach, the ATHase was combined with various NADH-, FAD- and haem-dependent enzymes, resulting in orthogonal redox cascades. Up to three enzymes were integrated in the cascade and combined with the ATHase with a view to achieving (i) a double stereoselective amine deracemization, (ii) a horseradish peroxidase-coupled readout of the transfer hydrogenase activity towards its genetic optimization, (iii) the formation of L-pipecolic acid from L-lysine and (iv) regeneration of NADH to promote a monooxygenase-catalysed oxyfunctionalization reaction.

摘要

酶催化和均相催化为解决化学和生物学中的合成挑战提供了互补的手段。尽管具有吸引力,但由于两种催化剂的相互失活,同时实施结合有机金属催化剂和酶的级联反应已被证明具有挑战性。为了解决这个问题,我们表明,在宿主蛋白内纳入 d(6)-钢琴凳配合物可提供完全兼容和互补的人工转移氢化酶 (ATHase),从而能够有效地进行同时串联催化。为了说明该方法的通用性,将 ATHase 与各种 NADH、FAD 和血红素依赖的酶结合,产生正交氧化还原级联。多达三种酶被整合到级联中,并与 ATHase 结合,目的是实现 (i) 双重立体选择性胺去消旋化,(ii) 通过辣根过氧化物酶偶联来读取转移氢化酶活性以进行遗传优化,(iii) 从 L-赖氨酸形成 L-哌啶酸,以及 (iv) 再生 NADH 以促进单加氧酶催化的氧化官能化反应。

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