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用于连续汗液分析的可穿戴等离子体纸质微流体

Wearable plasmonic paper-based microfluidics for continuous sweat analysis.

作者信息

Mogera Umesha, Guo Heng, Namkoong Myeong, Rahman Md Saifur, Nguyen Tan, Tian Limei

机构信息

Department of Biomedical Engineering, Center for Remote Health Technologies and Systems, Texas A&M University, College Station, TX 77843, USA.

出版信息

Sci Adv. 2022 Mar 25;8(12):eabn1736. doi: 10.1126/sciadv.abn1736. Epub 2022 Mar 23.

Abstract

Wearable sweat sensors have the potential to provide clinically meaningful information associated with the health and disease states of individuals. Current sensors mainly rely on enzymes and antibodies as biorecognition elements to achieve specific quantification of metabolite and stress biomarkers in sweat. However, enzymes and antibodies are prone to degrade over time, compromising the sensor performance. Here, we introduce a wearable plasmonic paper-based microfluidic system for continuous and simultaneous quantitative analysis of sweat loss, sweat rate, and metabolites in sweat. Plasmonic sensors based on label-free surface-enhanced Raman spectroscopy (SERS) can provide chemical "fingerprint" information for analyte identification. We demonstrate the sensitive detection and quantification of uric acid in sweat at physiological and pathological concentrations. The well-defined flow characteristics of paper microfluidic devices enable accurate quantification of sweat loss and sweat rate. The wearable plasmonic device is soft, flexible, and stretchable, which can robustly interface with the skin without inducing chemical or physical irritation.

摘要

可穿戴汗液传感器有潜力提供与个体健康和疾病状态相关的具有临床意义的信息。当前的传感器主要依靠酶和抗体作为生物识别元件,以实现对汗液中代谢物和应激生物标志物的特异性定量分析。然而,酶和抗体容易随时间降解,从而影响传感器性能。在此,我们介绍一种基于等离子体纸的可穿戴微流控系统,用于对汗液流失、出汗率和汗液中的代谢物进行连续同时定量分析。基于无标记表面增强拉曼光谱(SERS)的等离子体传感器可为分析物识别提供化学“指纹”信息。我们展示了在生理和病理浓度下对汗液中尿酸的灵敏检测和定量。纸基微流控装置明确的流动特性能够准确地定量汗液流失和出汗率。该可穿戴等离子体装置柔软、灵活且可拉伸,能够与皮肤稳固连接而不会引起化学或物理刺激。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4c54/8942375/aeae20b25a46/sciadv.abn1736-f1.jpg

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