放大器
重组酶聚合酶扩增
检出限
微流控
创伤弧菌
计算机科学
材料科学
限制
环介导等温扩增
分析物
生物
灵敏度(控制系统)
纳米技术
聚合酶链反应
中断
生物医学工程
计算机硬件
清脆的
毒力
牡蛎
病菌
过程(计算)
百叶窗
作者
Won Han,Ganghak Lee,Sang-Hyug Park,Sang Gil Lee,Young‐Mog Kim,Won‐Kyo Jung,Joong Ho Shin
出处
期刊:ACS Sensors
[American Chemical Society]
日期:2026-08-14
标识
DOI:10.1021/acssensors.6c01273
摘要
Vibrio vulnificus (V. vulnificus) is a highly virulent marine pathogen that causes severe infections, including sepsis and necrotizing fasciitis, with high fatality rates in susceptible individuals. Rapid and sensitive on-site detection is therefore essential, yet existing methods often depend on laboratory-based equipment and trained personnel, limiting field applicability. Here, we present an automated, paper-based RPA/CRISPR-Cas12a diagnostic platform that integrates a microfluidic paper pad with a spiral-spring-driven mechanical actuator. The device enables sequential execution of recombinase polymerase amplification (RPA), CRISPR-Cas12a-mediated detection, and lateral flow assay (LFA) readout through a single user-initiated winding step, without the need for external power or instrumentation. The multistep process was achieved through automatic reconfiguration of the paper pads, enabling pipette-free transfer of RPA amplicons from the paper-based RPA pad to the paper-based CRISPR pad, followed by transfer of the reporter probes to the LFA strip. The paper-based system is preloaded with lyophilized reagents and designed to autonomously control fluid flow and reaction timing. Targeting the vvhA gene specific to V. vulnificus, the platform achieved a limit of detection of 1 colony-forming unit per reaction (CFU/reaction) in pure cultures. This sensitivity was consistently reproduced in gill swab samples from oysters exposed to artificially contaminated seawater at 20 CFU/mL, confirming that reliable detection was achievable in oyster gill swabs under these conditions. Overall, this work establishes a fully mechanical, instrument-free RPA/CRISPR-based diagnostic system for V. vulnificus, offering a rapid, portable, and highly sensitive approach for point-of-care testing and food safety applications.
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