3D Printed Microfluidic Devices for Solid-Phase Extraction and On-Chip Fluorescent Labeling of Preterm Birth Risk Biomarkers.
Anna V BickhamChao PangBenjamin Q GeorgeDavid J TophamJacob B NielsenGregory P NordinAdam T WoolleyPublished in: Analytical chemistry (2020)
Solid-phase extraction (SPE) is a general preconcentration method for sample preparation that can be performed on a variety of specimens. The miniaturization of SPE within a 3D printed microfluidic device further allows for fast and simple extraction of analytes while also enabling integration of SPE with other sample preparation and separation methods. Here, we present the development and application of a reversed-phase lauryl methacrylate-based monolith, formed in 3D printed microfluidic devices, which can selectively retain peptides and proteins. The effectiveness of these SPE monoliths and 3D printed microfluidic devices was tested using a panel of nine preterm birth biomarkers of varying hydrophobicities and ranging in mass from 2 to 470 kDa. The biomarkers were selectively retained, fluorescently labeled, and eluted separately from the excess fluorescent label in 3D printed microfluidic systems. These are the first results demonstrating microfluidic analysis processes on a complete panel of preterm birth biomarkers, an important step toward developing a miniaturized, fully integrated analysis system.
Keyphrases
- solid phase extraction
- preterm birth
- molecularly imprinted
- circulating tumor cells
- high throughput
- high performance liquid chromatography
- liquid chromatography tandem mass spectrometry
- single cell
- liquid chromatography
- label free
- low birth weight
- tandem mass spectrometry
- gas chromatography mass spectrometry
- gestational age
- simultaneous determination
- ultra high performance liquid chromatography
- gas chromatography
- ms ms
- quantum dots
- mass spectrometry
- randomized controlled trial
- high resolution mass spectrometry
- systematic review
- computed tomography
- living cells