• DocumentCode
    1262088
  • Title

    uAnalyze: Web-Based High-Resolution DNA Melting Analysis with Comparison to Thermodynamic Predictions

  • Author

    Dwight, Z.L. ; Palais, R. ; Wittwer, C.T.

  • Author_Institution
    Dept. of Pathology, Univ. of Utah, Salt Lake City, UT, USA
  • Volume
    9
  • Issue
    6
  • fYear
    2012
  • Firstpage
    1805
  • Lastpage
    1811
  • Abstract
    uAnalyzeSM is a web-based tool for analyzing high-resolution melting data of PCR products. PCR product sequence is input by the user and recursive nearest neighbor thermodynamic calculations used to predict a melting curve similar to uMELT (http://www.dna.utah.edu/umelt/umelt.html). Unprocessed melting data are input directly from LightScanner-96, LS32, or HR-1 data files or via a generic format for other instruments. A fluorescence discriminator identifies low intensity samples to prevent analysis of data that cannot be adequately normalized. Temperature regions that define fluorescence background are initialized by prediction and optionally adjusted by the user. Background is removed either as an exponential or by linear baseline extrapolation. The precision or, “curve spread,” of experimental melting curves is quantified as the average of the maximum helicity difference of all curve pairs. Melting curve accuracy is quantified as the area or “2D offset” between the average experimental and predicted melting curves. Optional temperature overlay (temperature shifting) is provided to focus on curve shape. Using 14 amplicons of CYBB, the mean +/ - standard deviation of the difference between experimental and predicted fluorescence at 50 percent helicity was -0.04 + / -0.48°C. uAnalyze requires Flash, is not browser specific and can be accessed at http://www.dna.utah.edu/uv/uanalyze.html.
  • Keywords
    DNA; Internet; biology computing; data analysis; extrapolation; melting point; molecular biophysics; HR-1 data files; LS32 data files; LightScanner-96 data files; PCR product sequence; Web-based high-resolution DNA melting analysis; Web-based tool; curve spread; fluorescence discriminator; high-resolution melting data analysis; linear baseline extrapolation; maximum helicity difference; melting curve accuracy; melting curve prediction; optional temperature overlay; recursive nearest neighbor thermodynamic calculations; temperature regions; temperature shifting; thermodynamic predictions; uAnalyze; Bioinformatics; Computational biology; Melting curve analysis; biology and genetics; high-resolution melting; modeling and prediction; software; Computational Biology; DNA; Humans; Internet; Membrane Glycoproteins; Models, Genetic; Models, Statistical; NADPH Oxidase; Nucleic Acid Denaturation; Polymerase Chain Reaction; Software; Thermodynamics;
  • fLanguage
    English
  • Journal_Title
    Computational Biology and Bioinformatics, IEEE/ACM Transactions on
  • Publisher
    ieee
  • ISSN
    1545-5963
  • Type

    jour

  • DOI
    10.1109/TCBB.2012.112
  • Filename
    6265051