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用于高效合成(R)-香茅醛的全细胞生物催化剂的设计与工程。

Design and engineering of whole-cell biocatalyst for efficient synthesis of (R)-citronellal.

机构信息

State Key Laboratory of Bioreactor Engineering, New World Institute of Biotechnology, East China University of Science and Technology, Shanghai, 200237, China.

出版信息

Microb Biotechnol. 2022 May;15(5):1486-1498. doi: 10.1111/1751-7915.13958. Epub 2021 Nov 2.

Abstract

Bioproduction of optical pure (R)-citronellal from (E/Z)-citral at high substrate loading remains challenging. Low catalytic efficiency of (R)-stereoselective ene reductases towards crude citral mixture is one of the major bottlenecks. Herein, a structure-based engineering strategy was adopted to enhance the catalytic efficiency and stereoselectivity of an ene reductase (OYE2p) from Saccharomyces cerevisiae YJM1341 towards (E/Z)-citral. On basis of homologous modelling, molecular docking analysis and alanine scanning at the binding pocket of OYE2p, a mutant Y84A was obtained with simultaneous increase in catalytic efficiency and stereoselectivity. Furthermore, site-saturation mutagenesis of Y84 yielded seven mutants with improved activity and stereoselectivity in the (E/Z)-citral reduction. Among them, the variant Y84V exhibited an 18.3% and 71.3% rise in catalytic efficiency (k /K ) for (Z)-citral and (E)-citral respectively. Meanwhile, the stereoselectivity of Y84V was improved from 89.2% to 98.0% in the reduction in (E/Z)-citral. The docking analysis and molecular dynamics simulation of OYE2p and its variants revealed that the substitution Y84V enabled (E)-citral and (Z)-citral to bind with a smaller distance to the key hydrogen donors at a modified (R)-selective binding mode. The variant Y84V was then co-expressed with glucose dehydrogenase from Bacillus megaterium in E. coli D4, in which competing prim-alcohol dehydrogenase genes were deleted to prevent the undesired reduction in the aldehyde moiety of citral and citronellal. Employing this biocatalyst, 106 g l (E/Z)-citral was completely converted into (R)-citronellal with 95.4% ee value and a high space-time yield of 121.6 g l  day . The work highlights the synthetic potential of Y84V, which enabled the highest productivity of (R)-citronellal from (E/Z)-citral in high enantiopurity so far.

摘要

从(E/Z)-柠檬醛在高底物负荷下生物生产光学纯(R)-香茅醇仍然具有挑战性。(R)-立体选择性烯还原酶对粗柠檬醛混合物的催化效率低是主要瓶颈之一。在此,采用基于结构的工程策略来提高来自酿酒酵母 YJM1341 的烯还原酶(OYE2p)对(E/Z)-柠檬醛的催化效率和立体选择性。基于同源建模、分子对接分析和 OYE2p 结合口袋中的丙氨酸扫描,获得了一个突变体 Y84A,同时提高了催化效率和立体选择性。此外,对 Y84 进行定点饱和突变得到了七个在(E/Z)-柠檬醛还原中提高活性和立体选择性的突变体。其中,变体 Y84V 对(Z)-柠檬醛和(E)-柠檬醛的催化效率(k / K )分别提高了 18.3%和 71.3%。同时,Y84V 的立体选择性从(E/Z)-柠檬醛还原中的 89.2%提高到 98.0%。OYE2p 及其变体的对接分析和分子动力学模拟表明,取代 Y84V 使(E)-柠檬醛和(Z)-柠檬醛以较小的距离与关键的氢供体结合,形成一种经修饰的(R)-选择性结合模式。然后,将变体 Y84V 与来自巨大芽孢杆菌的葡萄糖脱氢酶在大肠杆菌 D4 中共同表达,其中删除了竞争的原醇脱氢酶基因,以防止柠檬醛和香茅醛的醛部分发生不必要的还原。使用这种生物催化剂,106 g/L 的(E/Z)-柠檬醛完全转化为(R)-香茅醇,ee 值为 95.4%,时空产率为 121.6 g/L·天。这项工作突出了 Y84V 的合成潜力,使其能够以迄今为止最高的对映体纯度从(E/Z)-柠檬醛生产(R)-香茅醇。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/02bb/9049607/918e201451e6/MBT2-15-1486-g007.jpg

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