In-Line Tapered Microfiber Sensors for Label-Free Simultaneous Detection of Dual Genes via Enzymatic Recombinase Amplification

超细纤维 检出限 环介导等温扩增 荧光 适体 化学 核酸 底漆(化妆品) 材料科学 荧光染料 纳米技术 生物传感器 多路复用 光纤 基因 重组酶聚合酶扩增 DNA微阵列 信号(编程语言) 生物物理学 滚动圆复制 重组酶 乙型肝炎病毒 复式(建筑) 放大器 光学传感 底漆延伸 DNA
作者
Minglu Yan,Xue Zhou,Ya-nan Zhang,Yong Zhao,S. C. Warren-Smith,Linh V. Nguyen,Xuegang Li
出处
期刊:ACS Sensors [American Chemical Society]
卷期号:11 (4): 3072-3082
标识
DOI:10.1021/acssensors.5c03945
摘要

As a sensitive and efficient isothermal amplification method, enzymatic recombinase amplification (ERA) holds strong potential for nucleic-acid-based disease diagnostics. However, current multiplexed ERA assays rely on distinct fluorescent labels to separate detection signals, increasing cost and optical complexity. Herein, we present a label-free dual-gene detection platform that integrates ERA with refractive-index-based sensing using an in-line tapered microfiber transducer. Gene-specific primer pairs are covalently immobilized on spatially separated microfiber segments via click chemistry, enabling site-selective initiation of ERA and inducing measurable spectral shifts. Fast Fourier transform and frequency-selective filtering of the composite optical signal allow real-time, parallel monitoring of amplification for each target without fluorescent labeling. Using hepatitis B virus and hepatitis C virus genes as examples, the system achieves simultaneous detection and discrimination within 20 min, covering a range from 10 to 10 5 copies/μL with a detection limit of 13 copies/μL per target, using only ∼15 μL of the sample. The sensing result was comparable to that of the standard fluorescent ERA assay. Spatial selectivity was confirmed using nontarget sequences, with each region responding exclusively to its corresponding target. Moreover, the sensor demonstrated applicability in detecting viral nucleic acids extracted from clinical serum samples and validated against fluorescence-based ERA assays, confirming accuracy in real-world diagnostics, highlighting its potential for practical diagnostic applications. The flexible layout and remote sensing capability of optical fibers may further reduce onsite instrumentation needs, offering promise for deployment in outbreak or resource-limited settings.
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