Point-of-Care Solid-Phase PCR in a Vertical Microfluidic Chip Integrated with All-Dielectric Nanostructured Metasurface for Highly Sensitive, Multiplexed Pathogen Detection

微流控 纳米技术 材料科学 多路复用 核酸检测 流体学 制作 炸薯条 电润湿 核酸 连锁反应 微流控芯片 可扩展性 生物传感器 检出限 DNA微阵列 荧光 折叠(DSP实现) 光电子学 环介导等温扩增 聚合酶链反应 小型化 合成生物学 分子诊断学 微加工 实验室晶片
作者
Islam Seder,Leonid Yu. Beliaev,Rodrigo Coronel Téllez,Christian Anthon,Dhouha Grissa,Tao Zheng,Jan Gorodkin,Sanshui Xiao,Yi Sun
出处
期刊:ACS Sensors [American Chemical Society]
卷期号:10 (11): 8606-8615 被引量:3
标识
DOI:10.1021/acssensors.5c02435
摘要

Multiplexed solid-phase polymerase chain reaction (SP-PCR) has emerged as an indispensable modality for concurrent amplification of multiple genetic loci within a singular reaction vessel, facilitating efficient molecular diagnostics. Nevertheless, SP-PCR has seldom been integrated into point-of-care diagnostic devices due to several technical challenges, such as bubble formation during PCR, long reaction time, and low fluorescence signals generated from the PCR products on a solid surface. To circumvent these constraints, we engineered a microfluidic chip comprising SP-PCR and nanophotonic enhancement to enable highly sensitive, high-throughput, and cost-efficient molecular diagnostics. The chip's vertical orientation integrates preloaded reagent chambers for sequential lysis, washing, elution, and amplification, driven by a synchronized stepper motor and air vacuum, achieving robust nucleic acid purification and reverse transcription-PCR, and enabling bubble-free, gravity-assisted fluid dynamics during the PCR thermocycling. Thermal cycling is expedited through a dual-heater configuration alternating at subsecond intervals, obviating active cooling and shortening the reaction time. All-dielectric nanostructured metasurface was incorporated beneath the PCR chamber, allowing for the facile immobilization of DNA arrays to conduct SP-PCR. Taking advantage of guided-mode resonance supported by the metasurface and the SP-PCR approaches permits multiplexed detection and achieves a detection limit of 10 copies/reaction, highlighting the platform's potential for point-of-care diagnostics, personalized medicine, and high-throughput pathogen surveillance. Facile fabrication and automation emphasize scalability for mass production and deployment and collectively represent an advancement in point-of-care diagnostics.
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