Peters Christin, Buller Rebecca
Competence Center for Biocatalysis, Institute of Chemistry and Biotechnology, Zürich University of Applied Sciences, Einsiedlerstrasse 31, 8820 Wädenswil, Switzerland.
Z Naturforsch C J Biosci. 2019 Feb 25;74(3-4):63-70. doi: 10.1515/znc-2018-0146.
Biocatalysis has developed enormously in the last decade and now offers solutions for the sustainable production of chiral and highly functionalised asset molecules. Products generated by enzymatic transformations are already being used in the food, feed, chemical, pharmaceutical and cosmetic industry, and the accessible compound panoply is expected to expand even further. In particular, the combination of stereo-selective enzymes in linear cascade reactions is an elegant strategy toward enantiomeric pure compounds, as it reduces the number of isolation and purification steps and avoids accumulation of potentially unstable intermediates. Here, we present the set-up of an enzyme cascade to selectively convert citral to (-)-iso-isopulegol by combining an ene reductase and a squalene hopene cyclase. In the initial reaction step, the ene reductase YqjM from Bacillus subtilis selectively transforms citral to (S)-citronellal, which is subsequently cyclised exclusively to (-)-iso-isopulegol by a mutant of the squalene hopene cyclase from Alicyclobacillus acidocaldarius (AacSHC). With this approach, we can convert citral to an enantiopure precursor for isomenthol derivatives.
在过去十年中,生物催化取得了巨大发展,如今为手性和高官能化资产分子的可持续生产提供了解决方案。酶促转化产生的产品已在食品、饲料、化工、制药和化妆品行业中得到应用,并且可获取的化合物种类有望进一步扩大。特别是,线性级联反应中立体选择性酶的组合是合成对映体纯化合物的一种巧妙策略,因为它减少了分离和纯化步骤的数量,并避免了潜在不稳定中间体的积累。在此,我们展示了一种酶级联反应的设置,通过结合烯还原酶和角鲨烯-hopene环化酶将柠檬醛选择性转化为(-)-异异蒲勒醇。在初始反应步骤中,来自枯草芽孢杆菌的烯还原酶YqjM将柠檬醛选择性转化为(S)-香茅醛,随后该产物被来自嗜酸 Alicyclobacillus acidocaldarius 的角鲨烯-hopene环化酶突变体(AacSHC)专一性环化生成(-)-异异蒲勒醇。通过这种方法,我们可以将柠檬醛转化为异薄荷醇衍生物的对映体纯前体。