Yin Mengtian, Xie Wanqing, Xiao Li, Sung Sun-Sang J, Ma Mingyang, Jin Li, Li Xudong, Xu Baoxing
Department of Mechanical and Aerospace Engineering, University of Virginia, PO Box 400746, 122 Engineer's Way, Charlottesville, VA 22904, USA.
Department of Orthopedic Surgery, University of Virginia, 450 Ray C Hunt Dr, Charlottesville, VA 22908, USA.
Extreme Mech Lett. 2022 Apr;52. doi: 10.1016/j.eml.2022.101631. Epub 2022 Jan 31.
Urinalysis is a simple and non-invasive approach for the diagnosis and monitoring of organ health and also is often used as a facile technique in assessment of substance abuse. However, quantitative urinalysis is predominantly limited to clinical laboratories. Here, we present an electrical sensing based, reusable, cellular microfluidic device that offers a fast urinalysis through quantitative reading of the electrical signals. The spatial soft porous scaffolds decorated with electrically conductive multiwalled carbon nanotubes that are capable of physically interacting with biomarkers in urine are developed through a cyclic swelling/absorption process of soft materials and are utilized to manufacture the cellular microfluidic device. The sensing capability, sensitivity and reusability (via sunlight exposure) of the device to monitor red blood cells, , and albumin are systemically demonstrated by programming mechanical deformation of porous scaffolds. experiments in disease mouse models confirm the diagnosis robustness of the device in comparable results with existing biochemical tests. The full integration of electrically conductive nanomaterials into soft scaffolds provides a foundation for devising bioelectronic devices with mechanically programmable microfluidic features in a low-cost manner, with broad applications for rapid disease diagnoses through body fluid.
尿液分析是一种用于诊断和监测器官健康的简单且非侵入性的方法,并且在药物滥用评估中也常被用作一种简便技术。然而,定量尿液分析主要局限于临床实验室。在此,我们展示了一种基于电传感的、可重复使用的细胞微流控装置,该装置通过对电信号的定量读取实现快速尿液分析。通过软材料的循环溶胀/吸收过程,开发出了用导电多壁碳纳米管装饰的空间软质多孔支架,这些支架能够与尿液中的生物标志物发生物理相互作用,并被用于制造细胞微流控装置。通过对多孔支架的机械变形进行编程,系统地展示了该装置监测红细胞、白细胞和白蛋白的传感能力、灵敏度和可重复使用性(通过阳光照射)。在疾病小鼠模型中的实验证实了该装置与现有生化检测结果相当的诊断稳健性。将导电纳米材料完全整合到软质支架中,为以低成本设计具有机械可编程微流控特性的生物电子装置奠定了基础,该装置在通过体液进行快速疾病诊断方面具有广泛应用。