Micromachines (Mar 2022)

Characterization of a Centrifugal Microfluidic Orthogonal Flow Platform

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

DOI
https://doi.org/10.3390/mi13030487
Journal volume & issue
Vol. 13, no. 3
p. 487

Abstract

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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.

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