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适配体修饰的 Cu 功能化 C 点:提高纳米酶活性的通用手段——“适配体纳米酶”。

Aptamer-Modified Cu-Functionalized C-Dots: Versatile Means to Improve Nanozyme Activities-"Aptananozymes".

机构信息

The Institute of Chemistry, The Hebrew University of Jerusalem, Jerusalem 91904, Israel.

Department of Chemical Research Support, Weizmann Institute of Science, Rehovot 76100, Israel.

出版信息

J Am Chem Soc. 2021 Aug 4;143(30):11510-11519. doi: 10.1021/jacs.1c03939. Epub 2021 Jul 21.

Abstract

The covalent linkage of aptamer binding sites to nanoparticle nanozymes is introduced as a versatile method to improve the catalytic activity of nanozymes by concentrating the reaction substrates at the catalytic nanozyme core, thereby emulating the binding and catalytic active-site functions of native enzymes. The concept is exemplified with the synthesis of Cu ion-functionalized carbon dots (C-dots), modified with the dopamine binding aptamer (DBA) or the tyrosinamide binding aptamer (TBA), for the catalyzed oxidation of dopamine to aminochrome by HO or the oxygenation of l-tyrosinamide to the catechol product, which is subsequently oxidized to amidodopachrome, in the presence of HO/ascorbate mixture. Sets of structurally functionalized DBA-modified Cu ion-functionalized C-dots or sets of structurally functionalized TBA-modified Cu ion-functionalized C-dots are introduced as nanozymes of superior catalytic activities (aptananozymes) toward the oxidation of dopamine or the oxygenation of l-tyrosinamide, respectively. The aptananozymes reveal enhanced catalytic activities as compared to the separated catalyst and respective aptamer constituents. The catalytic functions of the aptananozymes are controlled by the structure of the aptamer units linked to the Cu ion-functionalized C-dots. In addition, the aptananozyme shows chiroselective catalytic functions demonstrated by the chiroselective-catalyzed oxidation of l/d-DOPA to l/d-dopachrome. Binding studies of the substrates to the different aptananozymes and mechanistic studies associated with the catalytic transformations are discussed.

摘要

将适体结合位点通过共价键连接到纳米酶纳米粒子上,是一种提高纳米酶催化活性的通用方法,它可以将反应底物集中在催化纳米酶核心,从而模拟天然酶的结合和催化活性位点功能。该概念通过合成铜离子功能化的碳点(C-dots)得到了例证,这些碳点被多巴胺结合适体(DBA)或酪氨酸酰胺结合适体(TBA)修饰,用于 HO 或氧气将 l-酪氨酸酰胺氧化为邻苯二酚产物的催化氧化,随后将其氧化为酰胺邻苯二醌,HO/抗坏血酸混合物存在的情况下。一组结构功能化的 DBA 修饰的 Cu 离子功能化 C-dots 或一组结构功能化的 TBA 修饰的 Cu 离子功能化 C-dots 分别作为多巴胺氧化或 l-酪氨酸酰胺氧化的超催化活性的纳米酶(aptananozymes)被引入。与分离的催化剂和相应的适体成分相比,aptananozymes 表现出增强的催化活性。aptananozymes 的催化功能受连接到 Cu 离子功能化 C-dots 的适体单元的结构控制。此外,aptananozyme 表现出手性选择性催化功能,通过 l/d-DOPA 对 l/d-多巴的手性选择性催化氧化得到证明。讨论了不同 aptananozymes 对底物的结合研究以及与催化转化相关的机制研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fbbc/8856595/880212764519/ja1c03939_0001.jpg

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