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1.
Opt Express ; 22(3): 2675-80, 2014 Feb 10.
Artículo en Inglés | MEDLINE | ID: mdl-24663559

RESUMEN

We propose a new technique to perform precise selective infiltration of an air hole in the photonic crystal fiber (PCF). To carry out the infiltration process, the end face of the PCF is covered by a mask, which is fabricated by femtosecond laser inscription from the lateral direction. This proposed method overcomes the conventional limitation of maximum mask thickness. An analytical model is further proposed and demonstrated accurate determinations of the fabricated channel diameter in the mask.

2.
ACS Appl Mater Interfaces ; 11(5): 4867-4875, 2019 Feb 06.
Artículo en Inglés | MEDLINE | ID: mdl-30624893

RESUMEN

Rapid surface functionalization of nanomaterials using covalent linkage following "green chemistry" remains challenging, and the quest for developing simple protocols is persisting. We report a nanomechanical microfluidic approach for the coupling of allenamide functionalized organic derivatives on the surface of thiol-modified silica nanoparticles using allenamide-thiol chemistry. The coupling principle involves the use of a microfluidic surface acoustic wave device that generates acoustic streaming-based chaotic fluid micromixing that enables mixing of laterally flowing fluids containing active components. This approach was used to demonstrate the direct surface labeling of thiol-modified silica nanoparticles using a selected group of modified fluorescent tags containing allenamide handles and achieved a total labeling efficiency of 83-90%. This green approach enabled a highly efficient surface functionalization under aqueous conditions, with tunable control over the conjugation process via the applied field. The dye-labeled silica particles were characterized using various analytical techniques and found to be biocompatible with potential in live cell bioimaging. It is envisaged that this bioconjugation strategy will find numerous applications in the field of bioimaging and drug delivery.


Asunto(s)
Técnicas Analíticas Microfluídicas/instrumentación , Microscopía Confocal/instrumentación , Nanopartículas/química , Dióxido de Silicio/química , Compuestos de Sulfhidrilo/química , Amidas/química , Línea Celular Tumoral , Diseño de Equipo , Humanos , Técnicas Analíticas Microfluídicas/métodos , Propiedades de Superficie
3.
Lab Chip ; 16(20): 3898-3908, 2016 10 05.
Artículo en Inglés | MEDLINE | ID: mdl-27722715

RESUMEN

Although hepatocytes in vivo experience intra-abdominal pressure (IAP), pressure is typically not incorporated in hepatocyte culture systems. The cuboidal cell shape and extent of intercellular contact between cultured hepatocytes are critical parameters that influence the differentiated hepatic phenotype. Using a microfluidic device, the application of pressure to artificially compact cells and forge cell-cell interactions was previously demonstrated to be effective in accelerating hepatic repolarization. In seeking to implement this approach to higher throughput culture platforms for potential drug screening applications, we specifically designed a vertical-flow compaction bioreactor array (VCBA) that compacts hepatocytes within the range of IAP and portal pressure in vivo in a multi-well setup. As a result of vertical perfusion-generated forces, hepatocytes not only exhibited accelerated repolarization, an in vivo-like cuboidal morphology, but also better maintained hepatic functions in long-term culture as compared to the same cells cultured under static conditions. As a novel engineering tool to modulate cell compaction and intercellular interactions, this platform is a promising approach to confer tight control over hepatocyte repolarization for in vitro culture.


Asunto(s)
Reactores Biológicos , Polaridad Celular , Hepatocitos/citología , Análisis de Matrices Tisulares/instrumentación , Animales , Masculino , Perfusión , Ratas , Ratas Wistar
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