Department of Chemistry, University of Florida, 126 Sisler Hall, Gainesville, FL 32611, USA.
Department of Chemistry, University of Florida, 126 Sisler Hall, Gainesville, FL 32611, USA.
Biotechnol Adv. 2015 Sep-Oct;33(5):624-31. doi: 10.1016/j.biotechadv.2015.04.011. Epub 2015 May 1.
In the 20 years since Massey's initial report in 1995, interest in using alkene reductases to prepare chiral intermediates for synthesis has grown rapidly. While native alkene reductases often show very high stereoselectivities toward favorable substrates, these enzymes have somewhat size-restricted active sites that limit their substrate ranges to small alkenes. In addition, most alkene reductases have the same stereoselectivities, which makes it difficult to access the "other" product enantiomers. Protein engineering strategies have been used to address both of these issues and good progress has been made in several cases. This review summarizes published examples through late 2014 and focuses on studies of six enzymes: Saccharomyces pastorianus OYE 1, tomato OPR1, Zymomonas mobilis NCR, Enterobacter cloacae PB2 PETN reductase, Bacillus subtilis YqjM and Pichia stipitis OYE 2.6.
自 1995 年 Massey 最初的报告以来的 20 年里,人们对利用烯烃还原酶来制备手性合成中间体的兴趣迅速增长。尽管天然烯烃还原酶通常对有利的底物表现出非常高的立体选择性,但这些酶的活性部位大小受到限制,限制了它们的底物范围到小烯烃。此外,大多数烯烃还原酶具有相同的立体选择性,这使得难以获得“另一种”产物对映体。蛋白质工程策略已被用于解决这两个问题,并且在几个案例中取得了良好的进展。本综述总结了截至 2014 年底发表的实例,并重点介绍了六种酶的研究:酿酒酵母 Pastorianus OYE1、番茄 OPR1、运动发酵单胞菌 NCR、阴沟肠杆菌 PB2 PETN 还原酶、枯草芽孢杆菌 YqjM 和毕赤酵母 OYE2.6。