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离心式微流控正交流平台的特性分析

Characterization of a Centrifugal Microfluidic Orthogonal Flow Platform.

作者信息

Woolf Michael Shane, Dignan Leah M, Karas Scott M, Lewis Hannah M, Hadley Kevyn C, Nauman Aeren Q, Gates-Hollingsworth Marcellene A, AuCoin David P, Green Heather R, Geise Geoffrey M, Landers James P

机构信息

Department of Chemistry, University of Virginia, Charlottesville, VA 22904, USA.

TeGrex Technologies, Charlottesville, VA 22903, USA; .

出版信息

Micromachines (Basel). 2022 Mar 20;13(3):487. doi: 10.3390/mi13030487.

Abstract

To bring to bear the power of centrifugal microfluidics on vertical flow immunoassays, control of flow orthogonally through nanoporous membranes is essential. The on-disc approach described here leverages the rapid print-cut-laminate (PCL) disc fabrication and prototyping method to create a permanent seal between disc materials and embedded nanoporous membranes. Rotational forces drive fluid flow, replacing capillary action, and complex pneumatic pumping systems. Adjacent microfluidic features form a flow path that directs fluid orthogonally (vertically) through these embedded membranes during assay execution. This method for membrane incorporation circumvents the need for solvents (e.g., acetone) to create the membrane-disc bond and sidesteps issues related to undesirable bypass flow. In other recently published work, we described an orthogonal flow (OF) platform that exploited embedded membranes for automation of enzyme-linked immunosorbent assays (ELISAs). Here, we more fully characterize flow patterns and cellulosic membrane behavior within the centrifugal orthogonal flow (cOF) format. Specifically, high-speed videography studies demonstrate that sample volume, membrane pore size, and ionic composition of the sample matrix significantly impact membrane behavior, and consequently fluid drainage profiles, especially when cellulosic membranes are used. Finally, prototype discs are used to demonstrate proof-of-principle for sandwich-type antigen capture and immunodetection within the cOF system.

摘要

为了将离心微流控技术的优势应用于垂直流免疫分析,垂直穿过纳米多孔膜的流控至关重要。本文所述的盘上方法利用快速打印-切割-层压(PCL)盘制造和原型制作方法,在盘材料和嵌入式纳米多孔膜之间形成永久密封。旋转力驱动流体流动,取代了毛细管作用和复杂的气动泵系统。相邻的微流控特征形成一个流路,在分析执行过程中引导流体垂直(正交)穿过这些嵌入式膜。这种膜结合方法避免了使用溶剂(如丙酮)来形成膜与盘的结合,并避免了与不良旁路流动相关的问题。在最近发表的其他工作中,我们描述了一种正交流(OF)平台,该平台利用嵌入式膜实现酶联免疫吸附测定(ELISA)的自动化。在这里,我们更全面地描述了离心正交流(cOF)形式下的流动模式和纤维素膜行为。具体而言,高速摄像研究表明,样品体积、膜孔径和样品基质的离子组成显著影响膜行为,进而影响流体排水曲线,尤其是在使用纤维素膜时。最后,原型盘用于证明cOF系统中夹心型抗原捕获和免疫检测的原理验证。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/210e/8950265/28ca8a744a06/micromachines-13-00487-g001.jpg

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