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Combined electrokinetic manipulations of pathogenic bacterial samples in low-cost fabricated dielectrophoretic devices

dc.creatorMartínez Brenes, Alejandro
dc.creatorTorres Castro, Karina
dc.creatorEspinoza Araya, Christopher
dc.creatorAcuña Umaña, Katherine
dc.creatorRamírez Carranza, Raquel
dc.creatorGonzález Espinoza, Gabriela
dc.creatorRojas Castro, Norman
dc.creatorGuzmán Verri, Caterina
dc.creatorSáenz Arce, Giovanni
dc.creatorLesser Rojas, Leonardo
dc.creatorMarín Benavides, Richard
dc.date.accessioned2024-07-23T19:14:48Z
dc.date.available2024-07-23T19:14:48Z
dc.date.issued2019-11-13
dc.description.abstractA low-cost fabrication method of microfluidic devices with micrometer-sized constrictions used for electrodeless dielectrophoresis (eDEP) is demonstrated here. A structure on a commercial printed circuit board (PCB) template of one-sided copper clad fiberglass-epoxy laminate was used as a molding master for polydimethylsiloxane (PDMS) soft lithography. This was achieved by printing a constriction-based microchannel pattern on glossy paper with a micrometer-scaled resolution laser printer and transferring it to the laminate’s Cu face, rendering a microstructure of ∼17 µm height and various widths across tips. The Cu master’s pattern was transferred to PDMS, and smooth constrictions were observed under the microscope. Following air plasma encapsulation, PDMS chips were loaded with an inactivated bacterial sample of fluorescently stained Brucella abortus vaccine strain S-19 and connected to an amplified voltage source to examine the sample’s response to electric field variations. After an AC/DC electric field was applied to the bacterial solution in the microfluidic device, the combined effect of electrokinetic + hydrodynamic mechanisms that interact near the dielectric microconstrictions and exert forces to the sample was observed and later confirmed by COMSOL simulations. Our fabrication method is an alternative to be used when there is no access to advanced microfabrication facilities and opens ways for target selection and preconcentration of intracellular pathogens as well as sample preparation for metagenomics.
dc.description.procedenceUCR::Vicerrectoría de Investigación::Unidades de Investigación::Ciencias Básicas::Centro de Investigación en Ciencias Atómicas Nucleares y Moleculares (CICANUM)
dc.description.sponsorshipThis study was funded by the Fondos del Sistema del Consejo Nacional de Rectores (FEES-CONARE) Costa Rica, project name: “Cerrando la brecha entre el diagnóstico convencional de enfermedades infecciosas y el diagnóstico de nueva generación.”
dc.identifier.doihttps://doi.org/10.1063/1.5049148
dc.identifier.issn2158-3226
dc.identifier.urihttps://hdl.handle.net/10669/91863
dc.language.isoeng
dc.rightsacceso abierto
dc.sourceAIP Advances 9(11), 115303 (2019)
dc.subjectMicrofabrication
dc.subjectSoft lithography
dc.subjectElectrokinetic phenomena
dc.subjectHydrostatics
dc.subjectMicrofluidic devices
dc.subjectPathogens
dc.titleCombined electrokinetic manipulations of pathogenic bacterial samples in low-cost fabricated dielectrophoretic devices
dc.typeartículo original

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