色谱 ›› 2025, Vol. 43 ›› Issue (11): 1187-1199.DOI: 10.3724/SP.J.1123.2025.04011

• 专论与综述 • 上一篇    下一篇

纸基微流控芯片在病原体检测中的研究进展

刘心桐, 石佳, 石蒙*()   

  1. 辽宁师范大学,辽宁 大连 116029
  • 收稿日期:2025-04-28 出版日期:2025-11-08 发布日期:2025-11-07
  • 通讯作者: *E-mail:1508766100@qq.com.
  • 基金资助:
    国家自然科学基金项目(22106014);大连市科技人才创新项目(2023RQ035-1202/84123004);辽宁师范大学博士启动项目(603240140051/1202)

Research progress on paper-based microfluidic chips in pathogen detection

LIU Xintong, SHI Jia, SHI Meng*()   

  1. Liaoning Normal University,Dalian 116029,China
  • Received:2025-04-28 Online:2025-11-08 Published:2025-11-07
  • Supported by:
    National Natural Science Foundation of China(22106014);Dalian Science and Technology Innovation Talent Project(2023RQ035-1202/84123004);Liaoning Normal University Doctoral Start-up Project(603240140051/1202)

摘要:

在全球公共卫生形势日益严峻的当下,由细菌、病毒所导致的大范围疾病传播已经成为全球公共卫生领域的一大挑战,严重威胁着人类健康。因此,病原体的快速、准确检测对于预防和控制传染病的传播、保障公共卫生安全具有至关重要的作用。在此背景下,开发高效、简便、成本低廉且可广泛使用的检测方法已成为公共卫生领域的重点研究方向。纸基微流控芯片作为一种新型的检测平台,凭借其独特的集成化设计与特性,为病原体检测开辟了新路径。该装置集成了多种生物识别分子,包括抗体、核酸适配体、噬菌体和酶等,可高效捕获和检测病原体;因其具有低成本、易于加工、生物降解、高热稳定等优势,在医学诊断、环境监测和生化分析等多个领域展现出巨大的应用潜力,尤其是在病原体的即时检测领域,已逐渐成为研究和应用的热点。本文对纸基微流控装置从纸芯片的材料、二维和三维结构设计、制作方法以及检测技术等多个方面进行了详细阐述。同时,本文通过大肠杆菌(E. coli)和诺如病毒等的检测案例,展现了纸基微流控装置在病原体快速检测中的显著优势。随着材料科学、纳米技术和生物工程的交叉融合,纸基微流控技术可与高灵敏度传感器、智能化数据处理模块等结合,在病原体检测领域发挥重要作用,实现更精准、更快速的现场诊断,为全球公共卫生安全提供关键技术支撑。

关键词: 纸基微流控, 病原体, 纸基材料, 制作方法, 即时检测

Abstract:

In the context of an increasingly severe global public health situation, diseases caused by bacteria and viruses have become a global threat, severely impacting human health worldwide. Rapid and accurate pathogen detection is crucial for preventing infectious diseases and plays a vital role in safeguarding public health through effective preventive measures. Against this backdrop, the development of efficient, simple, low-cost and widely applicable detection methods has become a key research direction in public health. As a novel detection platform, paper-based microfluidic devices (μPADs) open new pathways for pathogen detection due to their unique design and integrated properties, showing significant potential in medical diagnostics and beyond. Their low cost and ease of use make them particularly appealing for point-of-care pathogen testing, a field in which they are gaining increasing attention. These devices are user-friendly, require no complex equipment, and are easy to transport and store. This article provides an in-depth exploration of μPADs, discussing comprehensive material design considerations for microfluidic applications. It will also examine advanced fabrication techniques and innovative detection technologies in detail. Furthermore, practical detection cases for specific pathogens such as Escherichia coli (E. coli) and norovirus will be presented to demonstrate the significant advantages of these devices in applications. As scientific research advances, μPADs are expected to play an increasingly significant role and poised to greatly enhance global public health efforts. Their inherent simplicity and affordability make them ideally suited for regions with limited access to sophisticated laboratory infrastructure. They enable convenient on-site testing, which significantly reduces both time expenditure and operational costs. Furthermore, their portability makes them suitable for deployment in disaster relief scenarios and remote fieldwork. Rapid pathogen identification is crucial for effective outbreak containment. To advance this goal, μPADs can be integrated with high-sensitivity sensors and intelligent data processing modules. Advancements in material science have facilitated the development of highly sensitive and stable paper-based substrates for diverse applications. Simultaneously, nanotechnology enables the fabrication of miniaturized components. Meanwhile, bioengineering has contributed to highly sensitive detection probes. These probes can detect pathogens even at very low concentrations. In conclusion, continuous technological advancements are positioning μPADs at the forefront of diagnostic innovation. As research and development progresses, their role in global public health is anticipated to expand considerably. This progress offers considerable promise for enhancing global disease surveillance and response capabilities. The potential is largely due to the inherent simplicity of μPADs, which makes them accessible worldwide. Their low cost, portability, and ease of operation by personnel with minimal training make them particularly advantageous in low-resource settings and provide a robust platform for rapid, on-site diagnostic testing. The modular design of these devices facilitates extensive customization and scalability. This enables them to be tailored for the detection of a broad spectrum of pathogens. The technology is also readily scalable for mass production, facilitating widespread distribution. These attributes collectively make it a versatile and indispensable tool for global health initiatives. The integration of these devices with mobile technology represents a significant leap forward, enabling real-time digital tracking and monitoring of disease outbreaks. This capability significantly enhances rapid response and epidemic containment efforts. Furthermore, the collected data can also be leveraged for broader public health surveillance and epidemiological studies. The potential of this technology to revolutionize point-of-care diagnostics is immense. μPADs can deliver accurate results within minutes, a stark contrast to the hours or days required by conventional laboratory methods. This rapid turnaround time facilitates faster clinical decision-making and intervention, ultimately leading to improved patient outcomes. Moreover, μPADs hold considerable promise for the rapid detection of novel or emerging pathogens. As research and development continue unabated, the functional capabilities of μPADs are anticipated to expand significantly. Future iterations may incorporate cutting-edge detection methodologies and advancements in nanotechnology to further enhance sensitivity and accuracy. Such enhancements will further solidify the pivotal role of μPADs in global public health surveillance and infectious disease control strategies. Ultimately, μPADs hold immense potential to save lives worldwide by enabling rapid pathogen detection and effectively curbing the transmission of infectious diseases.

Key words: paper-based microfluidics, pathogens, paper-based materials, fabrication methods, point-of-care testing

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