Immobilized enzymatic alcohol oxidation as a versatile reaction module for multienzyme cascades

Kesheng Fu, Lele Dong, Pengbo Liu, Li-Yi Zhou, Guanhua Liu, Jing Gao, Bingjun Gao, Yunting Liu, Yanjun Jiang
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Abstract

Enzymatic alcohol oxidation (EAO) is highly attractive thanks to its efficiency, selectivity, and sustainability benefits, but it is often neglected as a catalytic tool for practical production due to the instability and non-reusability of enzymes. Herein, a non-enantioselective alcohol dehydrogenase engineered from Candida parapsilosis (Cps ADH) and a laccase from Trametes versicolor was immobilized on mesoporous silica nanoflowers (MSNs), fabricating Cps ADH@MSNs (41 U/gsupport) and laccase@MSNs (67 U/gsupport) for EAO, respectively. The structural and functional properties of the MSNs endowed the immobilized enzymes with higher stability than free enzymes, and the relative activity of the immobilized enzyme was 52% and 63%, respectively, after being reused five times. The immobilized enzymes exhibited high activity, selectivity, and complementary substrate specificity in alcohol oxidation. The optimized EAO, as a versatile cascade module, was coupled with several other enzymatic transformations for multi-enzymatic synthesis of high value-added chemicals. The chiral alcohols and amines were produced with 99% ee and 84% to 98% ee, respectively, and (R )-benzoin and 2-furoic acid were prepared with 91% yield, 99% ee and 86% yield, respectively, demonstrating the synthetic utility of the immobilized enzymes.
作为多酶级联多功能反应模块的固定化酶解酒精氧化技术
酶促醇氧化(EAO)因其高效性、选择性和可持续性等优点而极具吸引力,但由于酶的不稳定性和不可重复使用性,它作为一种催化工具在实际生产中往往被忽视。在此,研究人员将一种从白色念珠菌(Candida parapsilosis)中提取的非对映体选择性醇脱氢酶(Cps ADH)和一种从Trametes versicolor中提取的漆酶固定在介孔二氧化硅纳米流体(MSNs)上,分别制备出了用于EAO的Cps ADH@MSNs(41 U/gsupport )和漆酶@MSNs(67 U/gsupport )。与游离酶相比,MSNs 的结构和功能特性赋予了固定化酶更高的稳定性,在重复使用五次后,固定化酶的相对活性分别为 52% 和 63%。固定化酶在醇氧化过程中表现出高活性、高选择性和底物特异性互补性。优化后的 EAO 作为一种多功能级联模块,可与其他几种酶转化技术相结合,进行高附加值化学品的多酶合成。制备的手性醇和胺的ee值分别为99%和84%-98%,制备的(R)-安息香和2-糠酸的收率分别为91%、99%和86%,证明了固定化酶的合成用途。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
3.40
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