Widersten Mikael, Gurell Ann, Lindberg Diana
Department of Biochemistry and Organic Chemistry, Uppsala University, Box 576, SE-751 23 Uppsala, Sweden.
Biochim Biophys Acta. 2010 Mar;1800(3):316-26. doi: 10.1016/j.bbagen.2009.11.014. Epub 2009 Nov 27.
Chiral epoxides and diols are important synthons for manufacturing fine chemicals and pharmaceuticals. The epoxide hydrolases (EC 3.3.2.-) catalyze the hydrolytic ring opening of epoxides producing the corresponding vicinal diol. Several isoenzymes display catalytic properties that position them as promising biocatalytic tools for the generation of enantiopure epoxides and diols.
This review focuses on the present data on enzyme structure and function in connection to biocatalytic applications. Available data on biocatalysis employed for purposes of stereospecific ring opening, to produce chiral vicinal diols, and kinetic resolution regimes, to achieve enantiopure epoxides, are discussed and related to results gained from structure-activity studies on the enzyme catalysts. More recent examples of the concept of directed evolution of enzyme function are also presented.
The present understanding of structure-activity relationships in epoxide hydrolases regarding chemical catalysis is strong. With the ongoing research, a more detailed view of the factors that influence substrate specificities and stereospecificities is expected to arise. The already present use of epoxide hydrolases in synthetic applications is expected to expand as new enzymes are being isolated and characterized. Refined methodologies for directed evolution of desired catalytic and physicochemical properties may further boost the development of novel and useful biocatalysts.
The catalytic power of enzymes provides new possibilities for efficient, specific and sustainable technologies to be developed for production of useful chemicals.
手性环氧化合物和二醇是制造精细化学品和药物的重要合成子。环氧化物水解酶(EC 3.3.2.-)催化环氧化物的水解开环反应,生成相应的邻位二醇。几种同工酶表现出的催化特性使其成为生成对映体纯的环氧化合物和二醇的有前景的生物催化工具。
本综述聚焦于与生物催化应用相关的酶结构和功能的现有数据。讨论了用于立体特异性开环以生产手性邻位二醇的生物催化以及用于获得对映体纯环氧化合物的动力学拆分方法的现有数据,并将其与酶催化剂的结构 - 活性研究结果相关联。还介绍了酶功能定向进化概念的最新实例。
目前对环氧化物水解酶中化学催化的结构 - 活性关系的理解较为深入。随着研究的不断进行,预计会对影响底物特异性和立体特异性的因素有更详细的认识。随着新的酶被分离和表征,环氧化物水解酶在合成应用中的现有用途有望扩大。用于定向进化所需催化和物理化学性质的精细方法可能会进一步推动新型实用生物催化剂的开发。
酶的催化能力为开发高效、特异且可持续的有用化学品生产技术提供了新的可能性。