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To demonstrate the utility of this approach for practical uses, we assembled a system that integrated a capillary PCR device, a microchip injector, and a BaNC-HDC column in a microfluidic format for multiplex PCR, online injection, BaNC-HDC sepandtionlined online DNA-YOYO-1 intercalation.
To develop a rapid bacterial testing device, a microfluidic PCR device was designed.
These results allow one to fabricate microfluidic PCR device for rapid bacterial testing.
The study demonstrates the feasibility of a low-cost 3D-printed PCR device that enables DNA amplification by thermal cycling.
In addition, we fabricated and evaluated the microfluidic pneumatic valve device which is one of the fundamental elements on our PCR device.
The overall dimensions of the PCR device are 30 mm × 40 mm where a serpentine microchannel is created to implement 27 thermal cycles.
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After purification of these PCR products with Microcon PCR devices (Amicon), a volume of 1.5 μl was cycle-sequenced, according to the BigDye Terminator kit (Applied Biosystems) supplier's instructions.
After purification of these PCR products with Microcon PCR devices (Amicon), a volume of 1,5 μl was cycle-sequenced following the BigDye Terminator kit (Applied Biosystems) using the supplier's instructions.
Significant advances have been made in developing microfluidic polymerase chain reaction (PCR) devices in the last two decades.
The low thermal conductivity of polymers is the main problem to design efficient disposable polymeric Polymerase Chain Reaction (PCR) devices.
Here, we review the important development of microfluidic polymerase chain reaction (PCR) devices and discuss the underlying physical principles for the optimal design and operation of the device.
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