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A new mathematical model for relative quantification in real-time RT-PCR

Nucleic Acids Research · 2001 · Vol. 29(9) · pp. 45e–45
Michael W. Pfaffl

Abstract

Use of the real-time polymerase chain reaction (PCR) to amplify cDNA products reverse transcribed from mRNA is on the way to becoming a routine tool in molecular biology to study low abundance gene expression. Real-time PCR is easy to perform, provides the necessary accuracy and produces reliable as well as rapid quantification results. But accurate quantification of nucleic acids requires a reproducible methodology and an adequate mathematical model for data analysis. This study enters into the particular topics of the relative quantification in real-time RT-PCR of a target gene transcript in comparison to a reference gene transcript. Therefore, a new mathematical model is presented. The relative expression ratio is calculated only from the real-time PCR efficiencies and the crossing point deviation of an unknown sample versus a control. This model needs no calibration curve. Control levels were included in the model to standardise each reaction run with respect to RNA integrity, sample loading and inter-PCR variations. High accuracy and reproducibility (<2.5% variation) were reached in LightCycler PCR using the established mathematical model.

Molecular Biology Techniques and ApplicationsMycobacterium research and diagnosisGene expression and cancer classificationBiologyReal-time polymerase chain reactionComputational biologyPolymerase chain reactionComplementary DNABiological systemMelting curve analysisReproducibilitySample (material)Nucleic acid

MeSH terms

AnimalsGene Expression RegulationModels, TheoreticalReference StandardsRNA, MessengerSensitivity and SpecificityTime FactorsTranscription, GeneticReproducibility of ResultsDNA PrimersReverse Transcriptase Polymerase Chain Reaction
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34,549
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References
A novel method for real time quantitative RT-PCR.
Genome Research · 1996 · 2,093 citations
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