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生物催化烃氧官能化的工艺实施方面

Process implementation aspects for biocatalytic hydrocarbon oxyfunctionalization.

作者信息

Bühler Bruno, Schmid Andreas

机构信息

Institute of Biotechnology, Swiss Federal Institute of Technology Zurich, ETH Zurich, Hönggerberg HPT, CH-8093.

出版信息

J Biotechnol. 2004 Sep 30;113(1-3):183-210. doi: 10.1016/j.jbiotec.2004.03.027.

Abstract

Oxidoreductases catalyze a large variety of regio-, stereo-, and chemoselective hydrocarbon oxyfunctionalizations, reactions, which are important in industrial organic synthesis but difficult to achieve by chemical means. This review summarizes process implementation aspects for the in vivo application of the especially versatile enzyme class of oxygenases, capable of specifically introducing oxygen from molecular oxygen into a large range of organic molecules. Critical issues such as reaching high enzyme activity and specificity, product degradation, cofactor recycling, reactant toxicity, and substrate and oxygen mass transfer can be overcome by biochemical process engineering and biocatalyst engineering. Both strategies provide a growing toolset to facilitate process implementation, optimization, and scale-up. Major advances were achieved via heterologous overexpression of oxygenase genes, directed evolution, metabolic engineering, and in situ product removal. Process examples from industry and academia show that the combined use of different concepts enables efficient oxygenase-based whole-cell catalysis of various commercially interesting reactions such as the biosynthesis of chiral compounds, the specific oxyfunctionalization of complex molecules, and also the synthesis of medium-priced chemicals. Better understanding of the cell metabolism and future developments in both biocatalyst and bioprocess engineering are expected to promote the implementation of many and various industrial biooxidation processes.

摘要

氧化还原酶催化各种各样的区域选择性、立体选择性和化学选择性烃类氧官能化反应,这些反应在工业有机合成中很重要,但通过化学方法难以实现。本综述总结了加氧酶这一特别通用的酶类在体内应用的过程实施方面,加氧酶能够将分子氧中的氧特异性地引入到多种有机分子中。通过生化过程工程和生物催化剂工程,可以克服诸如达到高酶活性和特异性、产物降解、辅因子循环、反应物毒性以及底物和氧气传质等关键问题。这两种策略都提供了越来越多的工具集,以促进过程的实施、优化和扩大规模。通过加氧酶基因的异源过表达、定向进化、代谢工程和原位产物去除取得了重大进展。来自工业界和学术界的过程实例表明,不同概念的联合使用能够实现基于加氧酶的全细胞催化各种具有商业价值的反应,如手性化合物的生物合成、复杂分子的特定氧官能化以及中等价格化学品的合成。对细胞代谢的更好理解以及生物催化剂和生物过程工程的未来发展有望推动许多不同工业生物氧化过程的实施。

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