Real-time PCR in virology
ПЦР в реальном времени в вирусологии
2002-03-15
SCID: 54.1/ydqf2r23
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fluorogenic detection chemistriesmolecular diagnosticsmultiplex PCRreal-time PCRvirus detection
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Abstract (AI)
The use of the polymerase chain reaction (PCR) in molecular diagnostics has increased to the point where it is now accepted as the gold standard for detecting nucleic acids from a number of origins and it has become an essential tool in the research laboratory. Real-time PCR has engendered wider acceptance of the PCR due to its improved rapidity, sensitivity, reproducibility and the reduced risk of carry-over contamination. There are currently five main chemistries used for the detection of PCR product during real-time PCR. These are the DNA binding fluorophores, the 5' endonuclease, adjacent linear and hairpin oligoprobes and the self-fluorescing amplicons, which are described in detail. We also discuss factors that have restricted the development of multiplex real-time PCR as well as the role of real-time PCR in quantitating nucleic acids. Both amplification hardware and the fluorogenic detection chemistries have evolved rapidly as the understanding of real-time PCR has developed and this review aims to update the scientist on the current state of the art. We describe the background, advantages and limitations of real-time PCR and we review the literature as it applies to virus detection in the routine and research laboratory in order to focus on one of the many areas in which the application of real-time PCR has provided significant methodological benefits and improved patient outcomes. However, the technology discussed has been applied to other areas of microbiology as well as studies of gene expression and genetic disease.
Key Findings
1
Five principal real-time PCR detection chemistries are identified: DNA-binding fluorophores, 5′-endonuclease probes, adjacent linear probes, hairpin oligoprobes, and self-fluorescing amplicons.
2
In virology laboratories, real-time PCR provides significant methodological benefits for routine and research virus detection and has contributed to improved patient outcomes, while retaining important limitations.
3
Rapid evolution of amplification hardware and fluorogenic chemistries has advanced real-time PCR toward the current state of the art.
4
Real-time PCR improves conventional PCR through greater rapidity, sensitivity, reproducibility, and reduced carry-over contamination risk.
5
The review examines factors limiting multiplex real-time PCR development and the technology’s application to nucleic-acid quantification.
Research Object
Real-time PCR assay applied to viral nucleic acid detection in virology
Research Subject
the detection, quantitation, performance advantages, limitations, and fluorogenic detection chemistries of real-time PCR in virological diagnostics and research
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2002-03-15
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