High-performance microchip electrophoresis separations of preterm birth biomarkers using 3D printed microfluidic devices

J Chromatogr A. 2023 Sep 13:1706:464242. doi: 10.1016/j.chroma.2023.464242. Epub 2023 Aug 1.

Abstract

We employed digital light processing-stereolithography 3D printing to create microfluidic devices with different designs for microchip electrophoresis (µCE). Short or long straight channel, and two- or four-turn serpentine channel microfluidic devices with separation channel lengths of 1.3, 3.1, 3.0, and 4.7 cm, respectively, all with a cross injector design, were fabricated. We measured current as a function of time and voltage to determine a separation time window and conditions for the onset of Joule heating in these designs. Separations in these devices were evaluated by performing µCE and measuring theoretical plate counts for electric field strengths near and above the onset of Joule heating, with fluorescently labeled glycine and phenylalanine as model analytes. We further demonstrated µCE of peptides and proteins related to preterm birth risk, showing increased peak capacity and resolution compared to previous results with 3D printed microdevices. These results mark an important step forward in the use of 3D printed microfluidic devices for rapid bioanalysis by µCE.

Keywords: 3D printing; Microchip electrophoresis; Microfabrication; Microfluidics; Preterm birth biomarkers.

MeSH terms

  • Biomarkers
  • Electrophoresis, Microchip*
  • Female
  • Humans
  • Infant, Newborn
  • Lab-On-A-Chip Devices
  • Premature Birth* / diagnosis
  • Printing, Three-Dimensional

Substances

  • Biomarkers