A skin-interfaced microfluidic platform supports dynamic sweat biochemical analysis during human exercise

汗水 离子导入 血乳酸 可穿戴计算机 化学 生物医学工程 心率 医学 内科学 计算机科学 血压 放射科 嵌入式系统
作者
Soongwon Cho,Samy M. Shaban,Ruihao Song,Haohui Zhang,Da Som Yang,Min-Jae Kim,Yirui Xiong,Xiuyuan Li,Kenneth E. Madsen,Sarena Wapnick,Shi-fan Zhang,Ziyu Chen,Jiwon Kim,Gianna Guinto,Michelle Li,Min‐Kyu Lee,Ravi F. Nuxoll,Shaghayegh Shajari,Jin Wang,Seongeun Son
出处
期刊:Science Translational Medicine [American Association for the Advancement of Science]
卷期号:16 (763) 被引量:4
标识
DOI:10.1126/scitranslmed.ado5366
摘要

Blood lactate concentration is an established circulating biomarker for measuring muscle acidity and can be evaluated for monitoring endurance, training routines, or athletic performance. Sweat is an alternative biofluid that may serve similar purposes and offers the advantage of noninvasive collection and continuous monitoring. The relationship between blood lactate and dynamic sweat biochemistry for wearable engineering applications in physiological fitness remains poorly defined. Here, we developed a microfluidic wearable band with an integrated colorimetric timer and biochemical assays that temporally captures sweat and measures pH and lactate concentration. A colorimetric silver nanoplasmonic assay was used to measure the concentration of lactate, and dye-conjugated SiO 2 nanoparticle–agarose composite materials supported dynamic pH analysis. We evaluated these sweat biomarkers in relation to blood lactate in human participant studies during cycling exercise of varying intensity. Iontophoresis-generated sweat pH from regions of actively working muscles decreased with increasing heart rate during exercise and was negatively correlated with blood lactate concentration. In contrast, sweat pH from nonworking muscles did not correlate with blood lactate concentration. Changes in sweat pH and blood lactate were observed in participants who did not regularly exercise but not in individuals who regularly exercised, suggesting a relationship to physical fitness and supporting further development for noninvasive, biochemical fitness evaluations.
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