微流控
工作流程
计算机科学
灵敏度(控制系统)
计算机硬件
清脆的
信号(编程语言)
数码产品
多路复用
数字微流体
纳米技术
嵌入式系统
信号处理
数字聚合酶链反应
样品(材料)
数字信号处理
电子工程
核酸检测
电子元件
动态范围
适体
概念证明
荧光
实时计算
生物传感器
核酸
生物系统
试剂
工程类
接口(物质)
作者
Indira Singh,Peeraphan Compiro,Pornchai Keawsapsak,Pimkhuan Hannanta-anan
标识
DOI:10.1021/acsmeasuresciau.5c00208
摘要
High Resolution Image Download MS PowerPoint Slide CRISPR-based diagnostics offer high sensitivity and specificity for nucleic acid detection, but their translation to point-of-care use remains limited by dependence on benchtop instrumentation, manual reagent handling, and costly optical components. To address these limitations, this study developed a fully integrated, low-cost digital microfluidic (DMF) system capable of automating the complete CRISPR/Cas12 workflow using on-board electronics and smartphone-based imaging. The system incorporates a programmable electrode array capable of precise droplet actuation for sample preparation and reagent mixing, a closed-loop heating module that maintains a stable reaction temperature of 39 °C, and a compact 3D-printed fluorescence imaging unit for end-point signal acquisition. To facilitate rapid and objective interpretation, we implemented a YOLOv11 deep learning model to classify fluorescence outputs into positive or negative results, achieving a mean average precision at 50% of 0.889. We applied the platform to the detection of Mycobacterium tuberculosis (MTB) DNA. The on-chip CRISPR assays reliably detected MTB across a dynamic range from 1 ng/μL down to 10 –8 ng/μL, with no signal observed in no-template controls. Overall, the device delivers analytical performance comparable to conventional tube-based CRISPR assays while offering portability, reduced user intervention, and minimized risk of handling errors. These results highlight the potential of the integrated DMF–CRISPR system as a practical and accessible solution for point-of-care molecular diagnostics.
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