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微滴介导的酶催化中的增强选择性。

Enhanced Selectivity in Microdroplet-Mediated Enzyme Catalysis.

机构信息

CAS Key Laboratory of Coastal Environmental Processes and Ecological Remediation, Yantai Institute of Coastal Zone Research (YIC), Chinese Academy of Sciences (CAS), Shandong Key Laboratory of Coastal Environmental Processes, YICCAS, Yantai, Shandong 264003, P. R. China.

University of Chinese Academy of Sciences, Beijing 100049, P. R. China.

出版信息

J Am Chem Soc. 2024 Sep 4;146(35):24389-24397. doi: 10.1021/jacs.4c06171. Epub 2024 Jul 29.

Abstract

Natural enzymes with enhanced catalytic activity and selectivity have long been studied by tuning the microenvironment around the active site, but how to modulate the active-site electric field in a simple fashion remains challenging. Here, we demonstrate that microdroplets as a simple yet versatile reactor can enhance the electric field at the active site of an enzyme. By using horseradish peroxidase as a model, improved selectivity in microdroplet-mediated enzyme catalysis can be obtained. Quantum mechanical/molecular dynamics calculations and vibrational Stark spectroscopy reveal that the electric field at the microdroplet interface can influence the electrostatic preorganization and orientation of the enzyme to enhance its internal electric field. As a result, the free energies of the substrate and heme can be tuned by the internal electric field, thereby changing its catalytic reaction pathway for a classical substrate, 3,3',5,5'-tetramethylbenzidine, and enabling selective C-N additions for specific substrates. This finding provides a green, simple, and effective way to modulate enzyme-catalyzed reactions and holds promise for a broad spectrum of biosensing and biosynthesis applications.

摘要

长期以来,人们一直在通过调节活性位点周围的微环境来研究具有增强催化活性和选择性的天然酶,但如何以简单的方式调节活性位点的电场仍然具有挑战性。在这里,我们证明了微滴作为一种简单而通用的反应器,可以增强酶活性位点的电场。使用辣根过氧化物酶作为模型,可以在微滴介导的酶催化中获得更高的选择性。量子力学/分子动力学计算和振动斯塔克光谱揭示,微滴界面的电场可以影响酶的静电预组织和取向,从而增强其内部电场。因此,内部电场可以调节底物和血红素的自由能,从而改变其对经典底物 3,3',5,5'-四甲基联苯胺的催化反应途径,并能够对特定底物进行选择性 C-N 添加。这一发现为调节酶催化反应提供了一种绿色、简单、有效的方法,并有望在广泛的生物传感和生物合成应用中得到应用。

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