Interconnected & Integrated Bioelectronics Lab (I2BL), Department of Electrical and Computer Engineering, UCLA, USA.
Department of Mechanical Engineering, University of Hong Kong, Hong Kong.
Lab Chip. 2022 Nov 8;22(22):4267-4275. doi: 10.1039/d2lc00670g.
Advancements in wearable bioanalytical microsystems have enabled diurnal and (semi)continuous monitoring of physiologically-relevant indices that are accessible through probing sweat. To deliver an undistorted and physiologically-meaningful interpretation of these readings, tracking the sweat secretion rate is essential, because it allows for calibrating the biomarker readings against variations in sweat secretion and inferring the body's hydration/electrolyte homeostasis status. To realize an autonomous wearable solution with intrinsically high signal-to-noise ratio sweat rate sensing capabilities, here, we devise a digitized microbubble detection mechanism-delivered by a hybrid microfluidic/electronic system with a compact footprint. This mechanism is based on the intermittent generation of microliter-scale bubbles electrolysis and the instantaneous measurement of their time-of-flight (and thus, velocity) impedimetric sensing. In this way, we overcome the limitations of previously proposed sweat rate sensing modalities that are inherently susceptible to non-targeted secretion characteristics (pH, conductivity, and temperature), constrained by volume, or lack system integration for autonomous on-body operation. By deploying our solution in human subject trials, we validate the utility of our solution for seamless monitoring of exercise- and iontophoretically-induced sweat secretion profiles.
可穿戴式生物分析微系统的进步使人们能够对通过探测汗液获得的与生理相关的指标进行日间和(半)连续监测。为了对这些读数进行无失真且具有生理意义的解释,跟踪汗液分泌率至关重要,因为它允许根据汗液分泌的变化对生物标志物读数进行校准,并推断出身体的水合/电解质稳态状态。为了实现具有固有高信噪比汗液率感测能力的自主可穿戴解决方案,在这里,我们设计了一种数字化微泡检测机制-通过具有紧凑足迹的混合微流控/电子系统来实现。该机制基于微升规模气泡的间歇产生-电解和即时测量它们的飞行时间(因此,速度)-阻抗感测。通过这种方式,我们克服了以前提出的汗液率感测模式的限制,这些模式本质上容易受到非目标分泌特性(pH 值、电导率和温度)的影响,受到体积的限制,或者缺乏用于自主在体操作的系统集成。通过在人体试验中部署我们的解决方案,我们验证了我们的解决方案用于无缝监测运动和离子电渗诱导的汗液分泌谱的实用性。