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Rapid prototyping of microfluidic probes for biomedical applications

机译:用于生物医学应用的微流体探针的快速原型

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The microfluidic probe (MFP) is an open space microfluidic device that combines the concepts of hydrodynamic flow confinement (HFC) and scanning probes to overcome the closed channel restrictions of conventional microfluidic devices. In biology, this allows for analysis of mammalian cells, neurons and tissue samples that are otherwise difficult to culture in conventional microfluidic devices. In this paper, we demonstrate how 3-D printing can be used to expedite the design-test cycle of the MFP and hence democratize the concept. The 3D printing procedures were adapted in fabricating the MFPs that were used for all experiments. Characterization of MFP's flow profile footprints are performed by comparisons with numerically calculated profiles. Application of the MFP is then used to selectively label adherent cells cultured in a Petri dish, within their conventional culture environment. Results show that while the 3D printed probes contain some artifacts, they function just as well as MFPs microfabricated using conventional techniques. Overall, this fabrication demonstrates a rapid, easy, and affordable fabrication technique for the MFP.
机译:微流体探针(MFP)是一种开放空间的微流体设备,结合了流体动力流动限制(HFC)和扫描探针的概念,可以克服常规微流体设备的封闭通道限制。在生物学上,这允许分析哺乳动物细胞,神经元和组织样品,而这些细胞,神经元和组织样品原本很难在常规微流体装置中进行培养。在本文中,我们演示了如何使用3D打印来加快MFP的设计测试周期,从而使该概念民主化。 3D打印程序适用于制造用于所有实验的MFP。通过与数值计算的轮廓进行比较,可以对MFP的流量轮廓足迹进行表征。然后将MFP的应用用于在常规培养环境中选择性标记培养皿中培养的贴壁细胞。结果表明,尽管3D打印探针包含一些伪像,但它们的功能与使用常规技术微制造的MFP一样。总体而言,这种制造工艺展示了MFP的快速,简便和可负担的制造技术。

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