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多功能光控纳米酶在环境 pH 值下实现汞离子的双模式荧光/比色传感。

Multifunctional light-controllable nanozyme enabled bimodal fluorometric/colorimetric sensing of mercury ions at ambient pH.

机构信息

School of Chemistry and Chemical Engineering, Jiangsu University, Zhenjiang, 212013, PR China.

School of Chemistry and Chemical Engineering, Jiangsu University, Zhenjiang, 212013, PR China.

出版信息

Biosens Bioelectron. 2023 Oct 15;238:115602. doi: 10.1016/j.bios.2023.115602. Epub 2023 Aug 15.

DOI:10.1016/j.bios.2023.115602
PMID:37595475
Abstract

Nanomaterials with enzyme-like catalytic features (nanozymes) find wide use in analytical sensing. Apart from catalytic characteristics, some other interesting functions coexist in the materials. How to combine these properties to design multifunctional nanozymes for new sensing strategy development is challenging. Besides, in nanozymes it is still a challenge to conveniently control the catalytic process, which also hinders their further applications in advanced biochemical analysis. To remove the above barriers, here we design a light-controllable multifunctional nanozyme, namely manganese-inserted cadmium telluride (Mn-CdTe) particles, that integrates oxidase-like activity with luminescence together, to achieve the fluorometric/colorimetric dual-mode detection of toxic mercury ions (Hg) at ambient pH. The Mn-CdTe exhibits a light-triggered oxidase-mimicking catalytic behavior to induce chromogenic reactions, thus enabling one to start or stop the catalytic progress easily via applying or withdrawing light irradiation. Meanwhile, the quantum dot material can exhibit bright photoluminescence, which provides the fluorometric channel to sense targets. When Hg is introduced, it rapidly leans toward Mn-CdTe through electrostatic interaction and Te-Hg bonding and induces the aggregation of the latter. As a result, the luminescence of Mn-CdTe is dynamically quenched, and the masking of active sites in aggregated Mn-CdTe leads to the decrease of light-initiated oxidase-mimetic activity. According to this principle, a new fluorometric/colorimetric bimodal method was established for Hg determination with excellent performance. A 3D-printed portable platform combining paper-based test strips and an App-equipped smartphone was further fabricated, making it possible to achieve in-field sensing of the analyte in various matrices.

摘要

具有酶样催化特性的纳米材料(纳米酶)在分析传感中得到了广泛的应用。除了催化特性外,这些材料还存在一些其他有趣的功能。如何结合这些特性来设计多功能纳米酶以开发新的传感策略是具有挑战性的。此外,在纳米酶中,方便地控制催化过程仍然是一个挑战,这也阻碍了它们在先进生化分析中的进一步应用。为了消除上述障碍,我们设计了一种光控多功能纳米酶,即锰插入碲化镉(Mn-CdTe)颗粒,它将过氧化物酶样活性与发光结合在一起,实现在环境 pH 值下对有毒汞离子(Hg)的荧光/比色双模式检测。Mn-CdTe 表现出光触发的过氧化物酶模拟催化行为,诱导显色反应,从而可以通过施加或撤回光照射来轻松启动或停止催化过程。同时,量子点材料可以表现出明亮的光致发光,从而提供荧光通道来感测目标。当引入 Hg 时,它通过静电相互作用和 Te-Hg 键迅速倾向于 Mn-CdTe,并诱导后者的聚集。结果,Mn-CdTe 的发光被动态猝灭,聚集的 Mn-CdTe 中的活性位点被掩蔽导致光引发的过氧化物酶模拟活性降低。根据这一原理,建立了一种用于 Hg 测定的新的荧光/比色双模态方法,具有优异的性能。进一步制备了一种结合纸质测试条和配备 App 的智能手机的 3D 打印便携式平台,使其能够实现各种基质中分析物的现场传感。

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