Department of Biomedical Engineering, Rochester Institute of Technology, Rochester, NY, 14623, USA.
Department of Biomedical Engineering, University of Rochester, Rochester, NY, 14627, USA.
Adv Healthc Mater. 2022 Nov;11(21):e2200802. doi: 10.1002/adhm.202200802. Epub 2022 Aug 21.
Microfluidic tissue barrier models have emerged to address the lack of physiological fluid flow in conventional "open-well" Transwell-like devices. However, microfluidic techniques have not achieved widespread usage in bioscience laboratories because they are not fully compatible with traditional experimental protocols. To advance barrier tissue research, there is a need for a platform that combines the key advantages of both conventional open-well and microfluidic systems. Here, a plug-and-play flow module is developed to introduce on-demand microfluidic flow capabilities to an open-well device that features a nanoporous membrane and live-cell imaging capabilities. The magnetic latching assembly of this design enables bi-directional reconfiguration and allows users to conduct an experiment in an open-well format with established protocols and then add or remove microfluidic capabilities as desired. This work also provides an experimentally-validated flow model to select flow conditions based on the experimental needs. As a proof-of-concept, flow-induced alignment of endothelial cells and the expression of shear-sensitive gene targets are demonstrated, and the different phases of neutrophil transmigration across a chemically stimulated endothelial monolayer under flow conditions are visualized. With these experimental capabilities, it is anticipated that both engineering and bioscience laboratories will adopt this reconfigurable design due to the compatibility with standard open-well protocols.
微流控组织屏障模型的出现解决了传统“开放孔道”类 Transwell 装置中缺乏生理液流的问题。然而,由于与传统实验方案不完全兼容,微流控技术尚未在生物科学实验室得到广泛应用。为了推进屏障组织研究,需要开发一种既能结合传统开放孔道系统,又能结合微流控系统关键优势的平台。本研究开发了一种即插即用的流动模块,将按需微流控流动功能引入具有纳米多孔膜和活细胞成像功能的开放孔道装置中。该设计的磁锁合组件支持双向重新配置,允许用户按照既定方案以开放孔道格式进行实验,然后根据需要添加或去除微流控功能。本工作还提供了一个经过实验验证的流动模型,可根据实验需求选择流动条件。作为概念验证,本研究展示了流动诱导的内皮细胞取向以及剪切敏感基因靶点的表达,可视化了在化学刺激的内皮单层下中性粒细胞在流动条件下的不同迁移阶段。有了这些实验能力,预计工程和生物科学实验室都将采用这种可重构设计,因为它与标准开放孔道方案兼容。