Andexer J N, Langermann J V, Kragl U, Pohl M
Institut für Molekulare Enzymtechnologie, Universität Düsseldorf, D-52426 Jülich, Germany.
Trends Biotechnol. 2009 Oct;27(10):599-607. doi: 10.1016/j.tibtech.2009.07.005. Epub 2009 Aug 27.
During the last decades, enzymes became very versatile catalysts for a variety of reactions including natural and unnatural compounds. However, many enzyme-catalysed reactions suffer from diverse restrictions because of limitations related to process parameters or the enzyme. The understanding and overcoming of those undesired side effects is therefore mandatory for the implementation of optimal process parameters. To achieve this aim, various methods from molecular biology and reaction engineering can be employed. By focusing on the hydroxynitrile lyase-catalysed synthesis of enantiopure cyanohydrins, we give an overview of strategies to improve commercially utilized enzymes and to suppress non-enzymatic reactions. Particular emphasis is placed on the necessity to combine approaches from different fields, such as enzyme engineering and reaction engineering.
在过去几十年中,酶已成为用于包括天然和非天然化合物在内的各种反应的非常通用的催化剂。然而,由于与工艺参数或酶相关的限制,许多酶催化反应受到各种限制。因此,理解和克服这些不良副作用对于实现最佳工艺参数是必不可少的。为了实现这一目标,可以采用分子生物学和反应工程中的各种方法。通过关注羟基腈裂解酶催化的对映体纯氰醇的合成,我们概述了改进商业使用的酶和抑制非酶促反应的策略。特别强调了将酶工程和反应工程等不同领域的方法结合起来的必要性。