• DocumentCode
    1815400
  • Title

    Automated validation of polymerase chain reactions using amplicon melting curves

  • Author

    Mann, Tobias P. ; Humbert, Richard ; Stamatoyannopolous, John A. ; Noble, William Stafford

  • Author_Institution
    Dept. of Genome Sci., Washington Univ., Seattle, WA, USA
  • fYear
    2005
  • fDate
    8-11 Aug. 2005
  • Firstpage
    377
  • Lastpage
    385
  • Abstract
    PCR, the polymerase chain reaction, is a fundamental tool of molecular biology. Quantitative PCR is the gold-standard methodology for determination of DNA copy numbers, quantitating transcription, and numerous other applications. A major barrier to large-scale application of PCR for quantitative genomic analyses is the current requirement for manual validation of individual PCR reactions to ensure generation of a single product. This typically requires visual inspection either of gel electrophoreses or temperature dissociation ("melting") curves of individual PCR reactions-a time-consuming and costly process. Here we describe a robust computational solution to this fundamental problem. Using a training set of 10,080 reactions comprising multiple quantitative PCR reactions from each of 1,728 unique human genomic amplicons, we developed a support vector machine classifier capable of discriminating single-product PCR reactions with better than 99% accuracy. This approach has broad utility, and eliminates a major bottleneck to widespread application of PCR for high-throughput genomic applications.
  • Keywords
    DNA; biochemistry; biology computing; electrophoresis; gels; molecular biophysics; support vector machines; DNA; PCR; gel electrophoreses; gold-standard methodology; human genomic amplicons; molecular biology; polymerase chain reaction; quantitating transcription; quantitative genomic analyses; robust computational solution; support vector machine classifier; temperature dissociation curve; visual inspection; Bioinformatics; DNA; Genomics; Humans; Inspection; Large-scale systems; Polymers; Robustness; Support vector machines; Temperature;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Computational Systems Bioinformatics Conference, 2005. Proceedings. 2005 IEEE
  • Print_ISBN
    0-7695-2344-7
  • Type

    conf

  • DOI
    10.1109/CSB.2005.17
  • Filename
    1498039