DocumentCode
1231258
Title
Fast PCR Thermal Cycling Device
Author
Grover, Joel ; Juncosa, Robert D. ; Stoffel, Nancy ; Boysel, Mark ; Brooks, Andrew I. ; McLoughlin, Michael P. ; Robbins, David W.
Author_Institution
Thermal Gradient, Inc., Pittsford, NY
Volume
8
Issue
5
fYear
2008
fDate
5/1/2008 12:00:00 AM
Firstpage
476
Lastpage
487
Abstract
A novel flow-through device for performing fast PCR thermal cycling is presented. The thermal gradient thermal cycling device is comprised of layers of highly thermally conducting material separated by insulating layers. Channels etched in the conducting and insulating layers create one continuous path through the device. When the device is held between platens at different temperatures and PCR sample mix is pumped through it, every fluid particle undergoes the time-temperature protocol necessary for PCR but with a temperature change rate not possible with conventional cyclers. Ultrafast thermal cycling makes it ideal for bio-defense applications, such as the instantaneous bio-aerosol agent identification system under development for the Department of Homeland Security. Its compact size and simplicity of use make it a natural choice for diagnostics, forensics, food and water testing and other DNA testing applications. Herein we describe the design and fabrication of the device developed for IBADS and the subsequent performance with various assays using plasmid and genomic template DNA. Performance under some circumstances was exceptional: Amplification rates of up to two decades per minute were recorded and total amplification of up to eight decades in 30 cycles was seen. We discuss how to optimize the performance of a device that pushes PCR to its fundamental limits and review a wide variety of performance data.
Keywords
DNA; thermal conductivity; DNA testing applications; Department of Homeland Security; PCR thermal cycling device; biodefense applications; instantaneous bio-aerosol agent identification system; insulating layers; thermally conducting material; time-temperature protocol; ultrafast thermal cycling; Conducting materials; DNA; Etching; Insulation; Protocols; Pumps; Temperature; Terrorism; Testing; Thermal conductivity; DNA testing; fast amplification; fast polymerase chain reaction (PCR);
fLanguage
English
Journal_Title
Sensors Journal, IEEE
Publisher
ieee
ISSN
1530-437X
Type
jour
DOI
10.1109/JSEN.2008.918248
Filename
4529141
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