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基于金纳米材料的微流控纸分析装置用于同时定量水样中的革兰氏阴性菌和亚硝酸盐离子。

Gold Nanomaterial-Based Microfluidic Paper Analytical Device for Simultaneous Quantification of Gram-Negative Bacteria and Nitrite Ions in Water Samples.

机构信息

Department of Electrical and Computer Engineering, Tufts University, Medford, Massachusetts 02155, United States.

Nano Lab, Tufts University, Medford, Massachusetts 02155, United States.

出版信息

ACS Sens. 2023 Nov 24;8(11):4364-4373. doi: 10.1021/acssensors.3c01769. Epub 2023 Nov 1.

Abstract

This study presents a rapid microfluidic paper-based analytical device (μPAD) capable of simultaneously monitoring Gram-negative bacteria and nitrite ions (NO) for water quality monitoring. We utilize gold nanoparticles (AuNPs) functionalized with polymyxin molecules (AuNPs@polymyxin) to cause color change due to aggregation for the detection of Gram-negative bacteria, and antiaggregation in the presence of -phenylenediamine (OPD) for NO detection. In this study, () serves as the model of a Gram-negative bacterium. Using the developed μPADs, the color changes resulting from aggregation and antiaggregation reactions are measured using a smartphone application. The linear detection ranges from 5.0 × 10 to 5.0 × 10 CFU/mL ( = 0.9961) for and 0.20 to 2.0 μmol/L ( = 0.995) for NO. The detection limits were determined as 2.0 × 10 CFU/mL for and 0.18 μmol/L for NO. Notably, the newly developed assay exhibited high selectivity with no interference from Gram-positive bacteria. Additionally, we obtained acceptable recovery for monitoring and NO in drinking water samples with no significant difference between our method and a commercial assay by test validation. The sensor was also employed for assessing the quality of the pond and environmental water source. Notably, this approach can also be applied to human urine samples with satisfactory accuracy. Furthermore, the assay's stability is extended due to its reliance on AuNPs rather than reagents like antibodies and enzymes, reducing costs and ensuring long-term viability. Our cost-effective μPADs therefore provide a real-time analysis of both contaminants, making them suitable for assessing water quality in resource-limited settings.

摘要

本研究提出了一种快速的微流控纸基分析器件(μPAD),能够同时监测革兰氏阴性菌和亚硝酸盐离子(NO),用于水质监测。我们利用聚多粘菌素分子功能化的金纳米粒子(AuNPs@polymyxin),使其因聚集而导致颜色变化,从而检测革兰氏阴性菌,而在存在 -苯二胺(OPD)时则防止聚集,从而检测 NO。在本研究中,()用作革兰氏阴性菌的模型。使用所开发的 μPADs,通过智能手机应用程序测量聚集和反聚集反应引起的颜色变化。对于和 NO,线性检测范围分别为 5.0×10 到 5.0×10 CFU/mL(=0.9961)和 0.20 到 2.0 μmol/L(=0.995)。检测限分别确定为 2.0×10 CFU/mL 和 0.18 μmol/L。值得注意的是,新开发的测定法表现出高选择性,对革兰氏阳性菌没有干扰。此外,我们通过 检验验证,在饮用水样品中对和 NO 的监测获得了可接受的回收率,与商业测定法之间没有显著差异。该传感器还用于评估池塘和环境水源的质量。值得注意的是,这种方法也可以应用于人类尿液样本,具有令人满意的准确性。此外,由于其依赖于金纳米粒子而不是抗体和酶等试剂,因此该测定法的稳定性得到了扩展,降低了成本并确保了长期可行性。因此,我们的具有成本效益的 μPADs 提供了对两种污染物的实时分析,使其适合在资源有限的环境中评估水质。

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