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Instrument for Real-Time Digital Nucleic Acid Amplification on Custom Microfluidic Devices
- Source :
- PLoS ONE, Vol 11, Iss 10, p e0163060 (2016), PLoS ONE
- Publication Year :
- 2016
- Publisher :
- Public Library of Science (PLoS), 2016.
-
Abstract
- Nucleic acid amplification tests that are coupled with a digital readout enable the absolute quantification of single molecules, even at ultralow concentrations. Digital methods are robust, versatile and compatible with many amplification chemistries including isothermal amplification, making them particularly invaluable to assays that require sensitive detection, such as the quantification of viral load in occult infections or detection of sparse amounts of DNA from forensic samples. A number of microfluidic platforms are being developed for carrying out digital amplification. However, the mechanistic investigation and optimization of digital assays has been limited by the lack of real-time kinetic information about which factors affect the digital efficiency and analytical sensitivity of a reaction. Commercially available instruments that are capable of tracking digital reactions in real-time are restricted to only a small number of device types and sample-preparation strategies. Thus, most researchers who wish to develop, study, or optimize digital assays rely on the rate of the amplification reaction when performed in a bulk experiment, which is now recognized as an unreliable predictor of digital efficiency. To expand our ability to study how digital reactions proceed in real-time and enable us to optimize both the digital efficiency and analytical sensitivity of digital assays, we built a custom large-format digital real-time amplification instrument that can accommodate a wide variety of devices, amplification chemistries and sample-handling conditions. Herein, we validate this instrument, we provide detailed schematics that will enable others to build their own custom instruments, and we include a complete custom software suite to collect and analyze the data retrieved from the instrument. We believe assay optimizations enabled by this instrument will improve the current limits of nucleic acid detection and quantification, improving our fundamental understanding of single-molecule reactions and providing advancements in practical applications such as medical diagnostics, forensics and environmental sampling.
- Subjects :
- 0301 basic medicine
Time Factors
Computer science
Microfluidics
Gene Expression
lcsh:Medicine
Artificial Gene Amplification and Extension
Bioinformatics
01 natural sciences
Polymerase Chain Reaction
Biochemistry
law.invention
chemistry.chemical_compound
Sampling (signal processing)
law
Nucleic Acids
Lab-On-A-Chip Devices
lcsh:Science
Polymerase chain reaction
Multidisciplinary
Temperature
Equipment Design
Optical Lenses
Optical Equipment
Physical Sciences
Engineering and Technology
Fluidics
Nucleic Acid Amplification Techniques
Computer hardware
Nucleic acid detection
Research Article
Optimization
Computer and Information Sciences
Imaging Techniques
Loop-mediated isothermal amplification
Equipment
Research and Analysis Methods
Computer Software
03 medical and health sciences
Fluorescence Imaging
Genetics
Nucleic Acid Amplification Tests
Molecular Biology Techniques
Molecular Biology
business.industry
010401 analytical chemistry
lcsh:R
Biology and Life Sciences
Reproducibility of Results
Nucleic acid amplification technique
Reverse Transcription
Reverse transcriptase
0104 chemical sciences
030104 developmental biology
chemistry
Nucleic acid
lcsh:Q
business
DNA
Mathematics
Software
Subjects
Details
- Language :
- English
- ISSN :
- 19326203
- Volume :
- 11
- Issue :
- 10
- Database :
- OpenAIRE
- Journal :
- PLoS ONE
- Accession number :
- edsair.doi.dedup.....f13e6cfd5d74a2f4b58a4079766a36e6