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使用微流控装置耦合紫外发光二极管探测器的便携式、定量、实时等温核酸扩增检测

Portable, quantitative, real-time isothermal nucleic acid amplification test using microfluidic device-coupled UV-LED photodiode detector.

作者信息

Kumar Natish, Kumari Monika, Chander Devtulya, Dogra Sandeep, Chaubey Asha, Chakraborty Suman, Arun Ravi Kumar

机构信息

Department of Chemical Engineering, Indian Institute of Technology, Jammu, 181221, India.

Fermentation and Microbial Biotechnology Division, CSIR-Indian Institute of Integrative of Medicine, Canal Road, Jammu, 180001, India.

出版信息

Biosens Bioelectron. 2025 Apr 15;274:117194. doi: 10.1016/j.bios.2025.117194. Epub 2025 Jan 22.

DOI:10.1016/j.bios.2025.117194
PMID:39904093
Abstract

We report a stand-alone, automated, fully quantitative, and portable Microfluidics Integrated LED-Photodiode (MILP) sensing technology as a new molecular diagnostic platform for rapid point-of-care nucleic acid testing in real-time. The all-in-one device integrates a paper-based assay for nucleic acid purification using a polymer-based membrane filter, in-situ isothermal amplification, dual-mode optical detection, and fully quantitative signal analysis by capturing the photovoltaic response using electrical polarity and photocurrent measurements. Highly selective photovoltaic cut-offs may readily recognize test-gene-specific variations quantitatively without requiring further auxiliary instrumentation. The on-cartridge limit of detection (LoD) showed 10 copies/μL, which could diagnose SARS-CoV-2 samples with high clinical sensitivity (95%) and specificity (100%) with reference to real-time PCR-based gold-standard benchmark. Our findings emphasize the test's unique advantages for intensive health surveillance, enabling early disease screening, precise severity assessment, and real-time tracking of disease progression in resource-limited settings without the need for extensive and expensive laboratory infrastructure.

摘要

我们报告了一种独立、自动化、全定量且便携的微流控集成发光二极管 - 光电二极管(MILP)传感技术,作为一种用于即时快速核酸检测的新型分子诊断平台。该一体化设备集成了一种基于纸的检测方法,用于使用基于聚合物的膜过滤器进行核酸纯化、原位等温扩增、双模式光学检测以及通过使用电极性和光电流测量来捕获光伏响应进行全定量信号分析。高选择性的光伏截止值可以轻松地定量识别测试基因特异性变异,而无需进一步的辅助仪器。芯片上的检测限(LoD)显示为10拷贝/μL,相对于基于实时PCR的金标准基准,该技术能够以高临床敏感性(95%)和特异性(100%)诊断SARS-CoV-2样本。我们的研究结果强调了该检测方法在强化健康监测方面的独特优势,能够在资源有限的环境中进行早期疾病筛查、精确的严重程度评估以及疾病进展的实时跟踪,而无需广泛且昂贵的实验室基础设施。

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