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通过构建纳米环境调控天然多特异性酶的性质

Tuning the Properties of Natural Promiscuous Enzymes by Engineering Their Nano-environment.

作者信息

Giunta Carolina I, Cea-Rama Isabel, Alonso Sandra, Briand Manon L, Bargiela Rafael, Coscolín Cristina, Corvini Philippe F-X, Ferrer Manuel, Sanz-Aparicio Julia, Shahgaldian Patrick

机构信息

Institute of Chemistry and Bioanalytics, School of Life Sciences, University of Applied Sciences and Arts Northwestern Switzerland, CH-4132 Muttenz, Switzerland.

Institute of Physical-Chemistry Rocasolano, Consejo Superior de Investigaciones Científicas (CSIC), ES-28006 Madrid, Spain.

出版信息

ACS Nano. 2020 Dec 22;14(12):17652-17664. doi: 10.1021/acsnano.0c08716. Epub 2020 Dec 11.

Abstract

Owing to their outstanding catalytic properties, enzymes represent powerful tools for carrying out a wide range of (bio)chemical transformations with high proficiency. In this context, enzymes with high biocatalytic promiscuity are somewhat neglected. Here, we demonstrate that a meticulous modification of a synthetic shell that surrounds an immobilized enzyme possessing broad substrate specificity allows the resulting nanobiocatalyst to be endowed with enantioselective properties while maintaining a high level of substrate promiscuity. Our results show that control of the enzyme nano-environment enables tuning of both substrate specificity and enantioselectivity. Further, we demonstrate that our strategy of enzyme supramolecular engineering allows the enzyme to be endowed with markedly enhanced stability in an organic solvent (, acetonitrile). The versatility of the method was assessed with two additional substrate-promiscuous and structurally different enzymes, for which improvements in enantioselectivity and stability were confirmed. We expect this method to promote the use of supramolecularly engineered promiscuous enzymes in industrially relevant biocatalytic processes.

摘要

由于其出色的催化性能,酶是用于高效进行广泛(生物)化学转化的强大工具。在此背景下,具有高生物催化选择性的酶在一定程度上被忽视了。在这里,我们证明对围绕具有广泛底物特异性的固定化酶的合成外壳进行精心修饰,能够使所得的纳米生物催化剂在保持高水平底物选择性的同时具备对映选择性。我们的结果表明,对酶纳米环境的控制能够调节底物特异性和对映选择性。此外,我们证明我们的酶超分子工程策略能够使酶在有机溶剂(如乙腈)中具有显著增强的稳定性。用另外两种具有底物选择性且结构不同的酶评估了该方法的通用性,证实了它们在对映选择性和稳定性方面的提升。我们期望这种方法能够促进超分子工程化的选择性酶在工业相关生物催化过程中的应用。

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