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首页> 外文期刊>ChemElectroChem >Highly Sensitive Electrochemical Detection of Reactive Oxygen Species in Living Cancer Cells Using Monolithic Metallic Foam Electrodes
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Highly Sensitive Electrochemical Detection of Reactive Oxygen Species in Living Cancer Cells Using Monolithic Metallic Foam Electrodes

机译:单片金属泡沫电极,活性癌细胞活性氧物质的高敏感电化学检测

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摘要

Reactive oxygen species (ROS) distribute in most mammalian cells in living organisms, and play a necessary role in signaling molecule to regulate various biological processes. To quantitatively and accurately monitor the ROS level releasing from living cells, electrochemical techniques have drawn great attention and ubiquitous innovations. However, its practicability is hindered by the sluggish electron transfer and poor mass transport efficiency between functional catalysts and their supports. Herein, we develop a three-dimensional monolithic and metallic foam (Ag-wire foam) to detect one typical ROS, i. e. hydrogen peroxide (H2O2) in three cancer cells. The high electrical conductivity of Ag and the substrate-free configuration guarantee the rapid electron flow within the metal scaffolds. The numerical model is established to depict the concentration distributions of H(2)O(2)and reaction products. It shows the inter-fiber voids throughout the foam can provide fast reactant diffusion channels and further facilitate the mass transport. We fabricate a microfluidic chip-based three-electrode system to detect the trace H(2)O(2)concentration. A low detection limit of 15 nM H(2)O(2)in human leukemia K562 cancer cells and less than 20 s response time 0is observed, outperforming many previous reports. Importantly, the concept of building three-dimensional metal wire foams demonstrated herein is hopeful to guide the designing and promote high-performance ROS-detection in living cells.
机译:活性氧物种(ROS)在生物体中大多数哺乳动物细胞分布,并在信号传导分子中发挥必要的作用以调节各种生物过程。为了定量准确地监测从活细胞释放的ROS水平,电化学技术引起了很大的关注和普遍的创新。然而,其实际性受到功能催化剂和它们的载体之间的缓慢电子转移和差的质量运输效率。在此,我们开发一种三维整体和金属泡沫(Ag-Wire泡沫)以检测一个典型的ROS,i。 e。三种癌细胞中的过氧化氢(H2O2)。 AG的高电导率和基板的构造确保了金属支架内的快速电子流。建立数值模型以描绘H(2)O(2)和反应产物的浓度分布。它示出了整个泡沫中的光纤间空隙可以提供快速的反应物扩散通道并进一步促进质量传输。我们制造基于微流体芯片的三电极系统,以检测痕量H(2)O(2)浓度。人白血病K562癌细胞中15nm H(2)o(2)的低检测限率观察到少于20秒的响应时间,表现出许多先前的报告。重要的是,在本文中显示的三维金属线泡沫的概念希望引导设计和促进活细胞中的高性能ROS检测。

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