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磁控酶反应

Magneto-controlled enzyme reactions.

作者信息

Bollella Paolo, Katz Evgeny

机构信息

Department of Chemistry and Biomolecular Science, Clarkson University, Potsdam, NY, United States.

出版信息

Methods Enzymol. 2020;630:1-24. doi: 10.1016/bs.mie.2019.09.002. Epub 2019 Oct 31.

Abstract

Various approaches to magneto-controlled biocatalytic enzyme reactions are discussed with specific example systems. Magnetic nano- and micro-size particles functionalized with enzymes or cofactors/electron transfer mediators have been used to translocate the components of the biocatalytic processes and to activate/inhibit their reactions. Magneto-induced deposition of the functionalized particles on an electrode surface resulted in activation of bioelectrocatalytic reactions. On the other hand, magneto-induced removal of the particles from the electrode surface resulted in the inhibition of the electrochemical reactions. Aggregation/disaggregation of enzyme-modified magnetic nanoparticles resulted in different mechanisms of biocatalytic cascades, changing them reversibly between substrate diffusion and substrate channeling processes. Magnetohydrodynamic activation of bioelectrocatalytic processes allowed enhancement of a biofuel cell operation. Overall, a large variety of possible magneto-controlled enzyme reactions is briefly discussed, particularly emphasizing their applications in different bioelectronic systems.

摘要

本文结合具体的示例系统,讨论了磁控生物催化酶反应的各种方法。用酶或辅因子/电子传递介质功能化的磁性纳米和微米级颗粒已被用于转移生物催化过程的组分,并激活/抑制其反应。功能化颗粒在电极表面的磁诱导沉积导致生物电催化反应的激活。另一方面,磁诱导从电极表面去除颗粒导致电化学反应的抑制。酶修饰磁性纳米颗粒的聚集/解聚导致生物催化级联反应的不同机制,使其在底物扩散和底物通道化过程之间可逆地变化。生物电催化过程的磁流体动力学激活提高了生物燃料电池的运行效率。总体而言,本文简要讨论了多种可能的磁控酶反应,特别强调了它们在不同生物电子系统中的应用。

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