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PMID: 25364758 Published · epublish English Journal Article

Understanding gene regulatory mechanisms by integrating ChIP-seq and RNA-seq data: statistical solutions to biological problems.

Frontiers in cell and developmental biology ·Vol. 2 ·2014-00-00 ·Pages 51

Angelini C, Costa V

Abstract

The availability of omic data produced from international consortia, as well as from worldwide laboratories, is offering the possibility both to answer long-standing questions in biomedicine/molecular biology and to formulate novel hypotheses to test. However, the impact of such data is not fully exploited due to a limited availability of multi-omic data integration tools and methods. In this paper, we discuss the interplay between gene expression and epigenetic markers/transcription factors. We show how integrating ChIP-seq and RNA-seq data can help to elucidate gene regulatory mechanisms. In particular, we discuss the two following questions: (i) Can transcription factor occupancies or histone modification data predict gene expression? (ii) Can ChIP-seq and RNA-seq data be used to infer gene regulatory networks? We propose potential directions for statistical data integration. We discuss the importance of incorporating underestimated aspects (such as alternative splicing and long-range chromatin interactions). We also highlight the lack of data benchmarks and the need to develop tools for data integration from a statistical viewpoint, designed in the spirit of reproducible research.

Keywords
ChIP-seq RNA-seq data integration gene regulatory mechanisms statistics
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Angelini Claudia
Istituto per le Applicazioni del Calcolo "M. Picone" - CNR Napoli, Italy ; Computational and Biology Open Laboratory (ComBOlab) Napoli, Italy.
Costa Valerio
Computational and Biology Open Laboratory (ComBOlab) Napoli, Italy ; Institute of Genetics and Biophysics "A. Buzzati-Traverso" - CNR Napoli, Italy.
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Article Info
Journal
Frontiers in cell and developmental biology
Abbr.
Front Cell Dev Biol
ISSN
2296-634X
Published
2014-00-00
Epub
2014-00-17
Pages
51
Language
English
Region
Switzerland
NLM ID
101630250
PMCID
PMC4207007
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