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一种快速且低成本的制造和集成方案,用于构建可穿戴式生物流体采样、操作和感测的 3D 微流控架构。

A rapid and low-cost fabrication and integration scheme to render 3D microfluidic architectures for wearable biofluid sampling, manipulation, and sensing.

机构信息

Interconnected & Integrated Bioelectronics Lab (I2BL), Department of Electrical and Computer Engineering, University of California, Los Angeles, CA, USA.

出版信息

Lab Chip. 2019 Sep 7;19(17):2844-2853. doi: 10.1039/c9lc00418a. Epub 2019 Jul 30.

Abstract

The large-scale deployment of wearable bioanalytical devices for general population longitudinal monitoring necessitates rapid and high throughput manufacturing-amenable fabrication schemes that render disposable, low-cost, and mechanically flexible microfluidic modules capable of performing a variety of bioanalytical operations within a compact footprint. The spatial constraints of previously reported wearable bioanalytical devices (with microfluidic operations confined to 2D), their lack of biofluid manipulation capability, and the complex and low-throughput nature of their fabrication process inherently limit the diversity and frequency of end-point assessments and prevent their deployment at large scale. Here, we devise a simple, scalable, and low-cost "CAD-to-3D Device" fabrication and integration scheme, which renders 3D and complex microfluidic architectures capable of performing biofluid sampling, manipulation, and sensing. The devised scheme is based on laser-cutting of tape-based substrates, which can be programmed at the software-level to rapidly define microfluidic features such as a biofluid collection interface, microchannels, and VIAs (vertical interconnect access), followed by the vertical assembly of pre-patterned layers to realize the final device. To inform the utility of our fabrication scheme, we demonstrated three representative devices to perform sweat collection (with visualizable secretion profile), sample filtration, and simultaneous biofluid actuation and sensing (using a sandwiched-interface). Our devised scheme can be adapted for the fabrication and manufacturing of current and future wearable bioanalytical devices, which in turn will catalyze the large-scale production and deployment of such devices for general population health monitoring.

摘要

大规模部署可穿戴式生物分析设备以进行一般人群的纵向监测,需要快速且高通量制造的制造方案,以生产出一次性、低成本且机械灵活的微流控模块,使其能够在紧凑的占地面积内执行各种生物分析操作。以前报道的可穿戴式生物分析设备(其微流控操作限于 2D)的空间限制、缺乏生物流体操作能力以及其制造过程的复杂和低通量性质,本质上限制了终点评估的多样性和频率,并阻止了它们的大规模部署。在这里,我们设计了一种简单、可扩展且低成本的“CAD 到 3D 设备”制造和集成方案,该方案可实现能够进行生物流体采样、操作和感测的 3D 和复杂微流控结构。所设计的方案基于基于带材的基板的激光切割,可以在软件级别进行编程,以快速定义微流控特征,例如生物流体收集接口、微通道和 VIAs(垂直互连访问),然后垂直组装预图案化层以实现最终设备。为了说明我们的制造方案的实用性,我们展示了三个代表性的设备,用于执行汗液收集(具有可视化的分泌轮廓)、样品过滤以及同时进行生物流体驱动和感测(使用夹层接口)。我们的设计方案可以适应当前和未来可穿戴式生物分析设备的制造和制造,这反过来又将促进此类设备的大规模生产和部署,以用于一般人群的健康监测。

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