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August 15, 2025Science Advances82 citationsOpen Access

A bioinspired microfluidic wearable sensor for multiday sweat sampling, transport, and metabolic analysis

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SSSoyoung ShinRLRuixiao LiuYYYiran Yang

Key Points

  • Challenging to achieve reliable sweat sampling and biochemical analysis over time, as evaporation and secretion variability are issues.
  • BMS 3 provides continuous metabolic monitoring, effectively tracking uric acid, xanthine, and alcohol levels for more than 2 days.
  • This device employs a microfluidic design with Janus membranes and a gel-based iontophoresis module for sweat secretion induction.
  • Shows promise for personalized health care by delivering therapeutic feedback and differentiating between normal and pathological states.

Abstract

Wearable sweat sensors enable noninvasive real-time biochemical monitoring, holding immense potential for personalized health care applications. However, achieving prolonged and reliable sweat sampling, along with stable biochemical analysis, remains challenging due to inconsistent secretion, rapid evaporation, and the reliance on external stimulation. Here, we present BMS 3 , a bioinspired microfluidic wearable sweat sensor system designed for multiday continuous metabolic monitoring. BMS 3 integrates hierarchically graded microchannels and superhydrophobic-superhydrophilic Janus membranes, inspired by pitcher plant trichomes and lotus leaves to enable efficient low volume sweat collection, transport, and renewal. A miniaturized carbachol gel–based iontophoresis module autonomously induces localized sweat secretion. Furthermore, the microfluidic design sustains sweat sampling for over 2 days from a single iontophoresis session, eliminating the need for physical exertion. In vitro and in vivo studies in healthy participants and patients with gout demonstrate BMS 3 ’s capability for continuous metabolic monitoring. By simultaneously tracking uric acid, xanthine, and alcohol levels, it effectively differentiates normal and pathological states while delivering timely therapeutic feedback.

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Cite This Study

Shin et al. (2025) studied this question.

synapsesocial.com/papers/68a3654c0a429f797332aed9https://doi.org/10.1126/sciadv.adw9024
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