Rabiee Navid
Department of Basic Medical Science, School of Medicine, Tsinghua University, Beijing, 100084, China.
Tsinghua-Peking Joint Center for Life Sciences, Tsinghua University, Beijing, 100084, China.
J Mater Chem B. 2025 May 7;13(18):5264-5289. doi: 10.1039/d5tb00251f.
Wearable microneedle (MN) patches have emerged as a transformative platform for biosensing, offering a minimally invasive and user-friendly approach to real-time health monitoring and disease diagnosis. Primarily designed to access interstitial fluid (ISF) through shallow skin penetration, MNs enable precise and continuous sampling of biomarkers such as glucose, lactate, and electrolytes. Additionally, recent innovations have integrated MN arrays with microfluidic and porous structures to support sweat-based analysis, where MNs act as structural or functional components in hybrid wearable systems. This review explores the design, fabrication, and functional integration of MNs into wearable devices, highlighting advances in multi-analyte detection, wireless data transmission, and self-powered sensing. Challenges related to material biocompatibility, sensor stability, scalability, and user variability are addressed, alongside emerging opportunities in microfluidics, artificial intelligence, and soft materials. Overall, MN-based biosensing platforms are poised to redefine personalized healthcare by enabling dynamic, decentralized, and accessible health monitoring.
可穿戴微针(MN)贴片已成为一种变革性的生物传感平台,为实时健康监测和疾病诊断提供了一种微创且用户友好的方法。微针主要设计用于通过浅皮肤穿刺获取间质液(ISF),能够精确且连续地采样生物标志物,如葡萄糖、乳酸和电解质。此外,最近的创新将微针阵列与微流体和多孔结构相结合,以支持基于汗液的分析,在这种情况下,微针在混合可穿戴系统中充当结构或功能组件。本综述探讨了微针在可穿戴设备中的设计、制造和功能集成,重点介绍了多分析物检测、无线数据传输和自供电传感方面的进展。还讨论了与材料生物相容性、传感器稳定性、可扩展性和用户变异性相关的挑战,以及微流体、人工智能和软材料方面的新兴机遇。总体而言,基于微针的生物传感平台有望通过实现动态、分散和可及的健康监测来重新定义个性化医疗保健。