Literature DB >> 21413180

Very quick reverse transcription polymerase chain reaction for detecting 2009 H1N1 influenza A using wire-guide droplet manipulationst.

David J You1, Phat L Tran, Hyuck-Jin Kwon, Deepa Patel, Jeong-Yeol Yoon.   

Abstract

Reverse transcription polymerase chain reaction (RT-PCR) is currently a gold standard in identifying influenza A virus, especially H1N1 flu. Typical RT-PCR assays take about 1-2 h for thermocycling, and there is a growing need to further speed up the thermocycling to less than 30 min. Additionally, the PCR assay system should be made portable as a point-of-care detection tool. There have been attempts to further speed up the PCR assays by reducing its volume. There have also been attempts to use droplet microfluidics technology to PCR, primarily to automate the PCR enrichment processes and take advantage of its small volume. In all these attempts, heating and cooling is made by conduction heat transfer. Rapid movements of droplets (immersed in oil) over three different temperature zones make very quick PCR possible, as heating/cooling will be made by convection heat transfer, whose heat transfer coefficients are much higher than that of conduction. We used our newly-invented method of wire-guide droplet manipulations towards very quick RT-PCR. Computational fluid dynamics (CFD) simulation of our system revealed that heating/cooling for each temperature change takes 1-4 s for a 10 microL droplet, as compared to >30 s in the other quick PCRs. Theoretically a 30-cycle process can take as short as 13 s x 30 cycles = 6 min 30 s. The entire system was made as a single instrument, with the components made by a milling machine and a rapid prototyping device. No additional equipment and external computers are required. With this newly developed system, 160 bp gene sequence was amplified from 2009 H1N1 influenza A (human origin). The 30-cycle process took as short as 6 min 50 s for a 10 microL droplet (with additional 4 min for reverse transcription). Its product was confirmed by traditional gel electrophoresis, subsequent imaging as well as gene sequencing, which has been very difficult with the other stationary droplet/nanodrop approaches. The proposed system has a potential to become an extremely rapid, portable, point-of-care tool for detecting influenza A.

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Year:  2011        PMID: 21413180     DOI: 10.1039/c005326k

Source DB:  PubMed          Journal:  Faraday Discuss        ISSN: 1359-6640            Impact factor:   4.008


  6 in total

1.  Fabrication of an Oscillating Thermocycler to Analyze the Canine Distemper Virus by Utilizing Reverse Transcription Polymerase Chain Reaction.

Authors:  Jyh-Jian Chen; Zong-Hong Lin
Journal:  Micromachines (Basel)       Date:  2022-04-12       Impact factor: 3.523

2.  Enhanced nucleic acid amplification with blood in situ by wire-guided droplet manipulation (WDM).

Authors:  Dustin K Harshman; Roberto Reyes; Tu San Park; David J You; Jae-Young Song; Jeong-Yeol Yoon
Journal:  Biosens Bioelectron       Date:  2013-09-27       Impact factor: 10.618

3.  Electrical Tweezer for Droplet Transportation, Extraction, Merging and DNA Analysis.

Authors:  Ali Shahid; Sylvia Chong; James Mahony; M Jamal Deen; P Ravi Selvaganapathy
Journal:  Micromachines (Basel)       Date:  2017-11-30       Impact factor: 2.891

Review 4.  Lab-on-a-chip pathogen sensors for food safety.

Authors:  Jeong-Yeol Yoon; Bumsang Kim
Journal:  Sensors (Basel)       Date:  2012-08-06       Impact factor: 3.576

5.  Droplet centrifugation, droplet DNA extraction, and rapid droplet thermocycling for simpler and faster PCR assay using wire-guided manipulations.

Authors:  David J You; Jeong-Yeol Yoon
Journal:  J Biol Eng       Date:  2012-09-04       Impact factor: 4.355

6.  Innovative qPCR using interfacial effects to enable low threshold cycle detection and inhibition relief.

Authors:  Dustin K Harshman; Brianna M Rao; Jean E McLain; George S Watts; Jeong-Yeol Yoon
Journal:  Sci Adv       Date:  2015-09-04       Impact factor: 14.136

  6 in total

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