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用于实时原位监测汗液中手性代谢物的可穿戴表面增强拉曼光谱-微流控贴片

Wearable SERS-Microfluidic Patch for Real-Time in Situ Monitoring of Chiral Metabolites in Sweat.

作者信息

Pan Shuang-Feng, Tian Xiang-Dong, Lu Ying, Liao Yu-Qin, Liu Mei-Qing, Meng Ling-Yi, Zhou Lei, Zhang Yun

机构信息

State Key Laboratory of Structural Chemistry, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou, 350002, P. R. China.

Xiamen Key Laboratory of Rare Earth Photoelectric Functional Materials, Xiamen Institute of Rare Earth Materials, Haixi Institute, Chinese Academy of Sciences, Xiamen, 361021, P. R. China.

出版信息

Small. 2025 Jun;21(24):e2500770. doi: 10.1002/smll.202500770. Epub 2025 Apr 28.

Abstract

Small chiral metabolic molecules are increasingly recognized as pivotal biomarkers for disease monitoring and treatment. Here, a wearable microfluidic patch is presented that integrates chiral 3D plasmonic nanostructures with surface-enhanced Raman spectroscopy (SERS) sensing activity for the in situ and real-time metabolic profiling of chiral molecules in sweat. The microfluidic patch is designed for the direct, in situ capture and storage of microliter volumes of sweat. By exploiting the 3D chiral plasmonic coupling interactions within the nanostructures, the integrated SERS sensor on the patch allows for highly sensitive and quantitative enantiomer detection through their unique fingerprint SERS spectra. In a proof-of-concept demonstration, the first in situ, real-time quantitative detection of chiral drug metabolite and pH in human sweat using this device is successfully conducted. This capability enables the capturing of an individual's dynamic metabolic profile. Leveraging this solution, pharmacokinetic correlations are established, showcasing the potential application of the device in assessing human health.

摘要

小型手性代谢分子越来越被认为是疾病监测和治疗的关键生物标志物。在此,我们展示了一种可穿戴微流控贴片,它将手性三维等离子体纳米结构与表面增强拉曼光谱(SERS)传感活性相结合,用于汗液中手性分子的原位实时代谢分析。该微流控贴片设计用于直接原位捕获和存储微升体积的汗液。通过利用纳米结构内的三维手性等离子体耦合相互作用,贴片上集成的SERS传感器能够通过其独特的指纹SERS光谱进行高灵敏度和定量对映体检测。在概念验证演示中,首次成功地使用该设备对人体汗液中的手性药物代谢物和pH值进行了原位实时定量检测。这种能力能够捕捉个体的动态代谢谱。利用该解决方案,建立了药代动力学相关性,展示了该设备在评估人类健康方面的潜在应用。

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