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基于弱相互作用的超小金纳米簇催化界面作为酶模拟物用于增强比色生物传感。

Weak Interaction-Tailored Catalytic Interface of Ultrasmall Gold Nanoclusters as Enzyme Mimics for Enhanced Colorimetric Biosensing.

机构信息

State Key Laboratory of Solidification Processing, School of Materials Science and Engineering, Northwestern Polytechnical University (NPU), Xi'an 710072, China.

Key Laboratory of Synthetic and Natural Functional Molecule Chemistry of the Ministry of Education, College of Chemistry&Materials Science, Northwest University, Xi'an 710069, China.

出版信息

ACS Appl Mater Interfaces. 2021 Dec 8;13(48):58209-58219. doi: 10.1021/acsami.1c18523. Epub 2021 Nov 29.

Abstract

Gold nanoclusters (AuNCs) represent an emerging type of engineered nanomaterials with intrinsic enzymatic activity for both chemical and biological applications, but the catalytic activity of most reported AuNCs remains rather limited. Herein, we report a new, efficient strategy of promoting the peroxidase-mimic activity of AuNCs by tailoring their catalytic interfaces via small molecule-mediated weak interactions. Inspired by the presence of imidazole structures in many biocatalytic centers, we screened a series of imidazole-containing small molecules to evaluate their impact on the enzymatic activity of AuNCs. Through monitoring the absorbance change of 3,3',5,5'-tetramethylbenzidine, 1-methyl-2-imidazolecarboxaldehyde (MCA) was identified to possess the most significant effect on enhancing the peroxidase-mimic activity of glutathione-stabilized AuNCs (GSH-AuNCs) among all the examined molecules. Interestingly, the enhancement effect of MCA on the catalytic activity of these AuNCs was found to be highly reversible and can be switched on/off by simply adding MCA/dialysis treatment. Molecular dynamics simulations and further experimental analysis confirmed that these MCA molecules were adsorbed on the surface of GSH-AuNCs through weak non-covalent interactions. The underlying mechanism analysis suggested that the presence of MCA can efficiently promote the production of •OH in the GSH-AuNC system. As a proof of example, we then demonstrated that the presence of MCA can greatly increase the bioanalytical performance of AuNC-based peroxidase mimics, as evidenced by a 65-fold lower LOD for glucose detection of AuNCs@MCA than that using AuNCs only. Finally, the present system has been successfully applied for sensing the blood glucose level of both healthy people and diabetics with promising results.

摘要

金纳米簇 (AuNCs) 是一种新兴的工程纳米材料,具有内在的酶活性,可应用于化学和生物学领域,但大多数报道的 AuNCs 的催化活性仍然相当有限。在此,我们通过小分子介导的弱相互作用来调整其催化界面,报告了一种提高 AuNCs 类过氧化物酶活性的新的、有效的策略。受许多生物催化中心中存在咪唑结构的启发,我们筛选了一系列含咪唑的小分子,以评估它们对 AuNCs 酶活性的影响。通过监测 3,3',5,5'-四甲基联苯胺的吸光度变化,发现 1-甲基-2-咪唑甲醛 (MCA) 对增强谷胱甘肽稳定的 AuNCs (GSH-AuNCs) 的过氧化物酶模拟活性的影响最大。有趣的是,发现 MCA 对这些 AuNCs 催化活性的增强效果是高度可逆的,通过简单地添加 MCA/透析处理即可开启/关闭。分子动力学模拟和进一步的实验分析证实,这些 MCA 分子通过弱非共价相互作用吸附在 GSH-AuNCs 的表面上。机制分析表明,MCA 的存在可以有效地促进 GSH-AuNC 体系中 •OH 的产生。作为一个实例,我们证明了 MCA 的存在可以大大提高基于 AuNC 的过氧化物酶模拟物的生物分析性能,AuNCs@MCA 的葡萄糖检测的 LOD 比仅使用 AuNCs 时低 65 倍。最后,该体系成功应用于检测健康人和糖尿病患者的血糖水平,结果令人满意。

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