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Evidence classification of high-throughput protocols and confidence integration in RegulonDB. | LitMetric

Evidence classification of high-throughput protocols and confidence integration in RegulonDB.

Database (Oxford)

Programa de Genómica Computacional, Centro de Ciencias Genómicas, Universidad Nacional Autónoma de México, AP 565-A, Cuernavaca, Morelos 62100, Mexico.

Published: June 2013

AI Article Synopsis

  • RegulonDB offers curated information on E. coli's transcriptional regulatory network, including experimental and computational data.
  • A new two-tier rating system classifies evidence strength as 'weak' or 'strong', and now includes classifications for high-throughput evidence like ChIP and RNA-seq.
  • Two evaluation strategies—statistical validation and independent cross-validation—improve confidence in data accuracy, potentially upgrading evidence ratings from weak to confirmed.

Article Abstract

RegulonDB provides curated information on the transcriptional regulatory network of Escherichia coli and contains both experimental data and computationally predicted objects. To account for the heterogeneity of these data, we introduced in version 6.0, a two-tier rating system for the strength of evidence, classifying evidence as either 'weak' or 'strong' (Gama-Castro,S., Jimenez-Jacinto,V., Peralta-Gil,M. et al. RegulonDB (Version 6.0): gene regulation model of Escherichia Coli K-12 beyond transcription, active (experimental) annotated promoters and textpresso navigation. Nucleic Acids Res., 2008;36:D120-D124.). We now add to our classification scheme the classification of high-throughput evidence, including chromatin immunoprecipitation (ChIP) and RNA-seq technologies. To integrate these data into RegulonDB, we present two strategies for the evaluation of confidence, statistical validation and independent cross-validation. Statistical validation involves verification of ChIP data for transcription factor-binding sites, using tools for motif discovery and quality assessment of the discovered matrices. Independent cross-validation combines independent evidence with the intention to mutually exclude false positives. Both statistical validation and cross-validation allow to upgrade subsets of data that are supported by weak evidence to a higher confidence level. Likewise, cross-validation of strong confidence data extends our two-tier rating system to a three-tier system by introducing a third confidence score 'confirmed'. Database URL: http://regulondb.ccg.unam.mx/

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC3548332PMC
http://dx.doi.org/10.1093/database/bas059DOI Listing

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