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Centimeter-Scale Surface Interactions Using Hydrodynamic Flow Confinements
DOI:10.1021/acs.langmuir.6b02983.png)
摘要
En 中文
We present a device and method for selective chemical interactions with immersed substrates at the centimeter-scale. Our implementations enable both, sequential and simultaneous delivery of multiple reagents to a substrate, as well as the creation of gradients of reagents on surfaces. The method is based on localizing submicroliter volumes of liquids on an immersed surface with a microfluidic probe (MFP) using a principle termed hydrodynamic flow confinement (HFC). We here show spatially defined, multiplexed surface interactions while benefiting from the probe capabilities such as non-contact scanning operation and convection enhanced reaction kinetics. Three-layer glass-Si-glass probes were developed to implement slit aperture and aperture-array designs. Analytical and numerical analysis helped to establish probe designs and operating parameters. Using these probes, we performed immunohistochemical analysis on individual cores of a human breast-cancer tissue microarray. We applied alpha-p53 antibodies on a 2 mm diameter core within 2.5 min using a slit-aperture probe (HFC dimension: 0.3 mm x 1.2 mm). Further, multiplexed treatment of a tissue core with alpha-p53 and alpha-beta-actin antibodies was performed using four adjacent HFCs created with an aperture-array probe (HFC dimension: 4 x 0.3 mm x 0.25 mm). The ability of these devices and methods to perform multiplexed assays, present sequentially different liquids on surfaces, and interact with surfaces at the centimeter-scale will likely spur new and efficient surface assays.
Keyword:
DIP-PEN NANOLITHOGRAPHY
MICROFLUIDIC PROBE
IMMUNOHISTOCHEMISTRY
MICROSCOPY
RETRIEVAL
PIPETTE
CELLS
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