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1.
Mikrochim Acta ; 189(5): 204, 2022 04 28.
Artículo en Inglés | MEDLINE | ID: mdl-35484354

RESUMEN

A 3D printed, automated, pressure-driven injection microfluidic system for microchip electrophoresis (µCE) of preterm birth (PTB)-related peptides and proteins has been developed. Functional microvalves were formed, either with a membrane thickness of 5 µm and a layer exposure time of 450 ms or with a membrane thickness of 10 µm and layer exposure times of 300-350 ms. These valves allowed for control of fluid flow in device microchannels during sample injection for µCE separation. Device design and µCE conditions using fluorescently labeled amino acids were optimized. A sample injection time of 0.5 s and a separation voltage of 450 V (460 V/cm) yielded the best separation efficiency and resolution. We demonstrated the first µCE separation with pressure-driven injection in a 3D printed microfluidic device using fluorescently labeled PTB biomarkers and 532 nm laser excitation. Detection limits for two PTB biomarkers, peptide 1 and peptide 2, for an injection time of 1.5 s were 400 pM and 15 nM, respectively, and the linear detection range for peptide 2 was 50-400 nM. This 3D printed microfluidic system holds promise for future integration of on-chip sample preparation processes with µCE, offering promising possibilities for PTB risk assessment.


Asunto(s)
Electroforesis por Microchip , Nacimiento Prematuro , Biomarcadores/análisis , Electroforesis por Microchip/métodos , Femenino , Humanos , Recién Nacido , Dispositivos Laboratorio en un Chip , Péptidos , Embarazo , Nacimiento Prematuro/diagnóstico , Impresión Tridimensional
2.
Anal Chem ; 92(18): 12322-12329, 2020 09 15.
Artículo en Inglés | MEDLINE | ID: mdl-32829631

RESUMEN

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.


Asunto(s)
Fluorescencia , Dispositivos Laboratorio en un Chip , Nacimiento Prematuro/diagnóstico , Impresión Tridimensional , Extracción en Fase Sólida , Biomarcadores/análisis , Colorantes Fluorescentes/química , Humanos
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