Literature DB >> 23742247

Identification of thresholds for dichotomizing DNA methylation data.

Yihua Liu1, Yuan Ji, Peng Qiu.   

Abstract

: DNA methylation plays an important role in many biological processes by regulating gene expression. It is commonly accepted that turning on the DNA methylation leads to silencing of the expression of the corresponding genes. While methylation is often described as a binary on-off signal, it is typically measured using beta values derived from either microarray or sequencing technologies, which takes continuous values between 0 and 1. If we would like to interpret methylation in a binary fashion, appropriate thresholds are needed to dichotomize the continuous measurements. In this paper, we use data from The Cancer Genome Atlas project. For a total of 992 samples across five cancer types, both methylation and gene expression data are available. A bivariate extension of the StepMiner algorithm is used to identify thresholds for dichotomizing both methylation and expression data. Hypergeometric test is applied to identify CpG sites whose methylation status is significantly associated to silencing of the expression of their corresponding genes. The test is performed on either all five cancer types together or individual cancer types separately. We notice that the appropriate thresholds vary across different CpG sites. In addition, the negative association between methylation and expression is highly tissue specific.

Entities:  

Year:  2013        PMID: 23742247      PMCID: PMC3680080          DOI: 10.1186/1687-4153-2013-8

Source DB:  PubMed          Journal:  EURASIP J Bioinform Syst Biol        ISSN: 1687-4145


  15 in total

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Review 4.  The fundamental role of epigenetic events in cancer.

Authors:  Peter A Jones; Stephen B Baylin
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8.  Boolean implication networks derived from large scale, whole genome microarray datasets.

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Authors:  Meng Li; Curt Balch; John S Montgomery; Mikyoung Jeong; Jae Hoon Chung; Pearlly Yan; Tim H M Huang; Sun Kim; Kenneth P Nephew
Journal:  BMC Med Genomics       Date:  2009-06-08       Impact factor: 3.063

10.  Comprehensive molecular portraits of human breast tumours.

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Authors:  Marie-Abele C Bind; Brent A Coull; Andrea Baccarelli; Letizia Tarantini; Laura Cantone; Pantel Vokonas; Joel Schwartz
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3.  Quantitative methodology is critical for assessing DNA methylation and impacts on correlation with patient outcome.

Authors:  Annette M Lim; Ida Lm Candiloro; Nicholas Wong; Marnie Collins; Hongdo Do; Elena A Takano; Christopher Angel; Richard J Young; June Corry; David Wiesenfeld; Stephen Kleid; Elizabeth Sigston; Bernard Lyons; Danny Rischin; Benjamin Solomon; Alexander Dobrovic
Journal:  Clin Epigenetics       Date:  2014-12-09       Impact factor: 6.551

4.  Genome-scale methylation assessment did not identify prognostic biomarkers in oral tongue carcinomas.

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5.  Prognostic Implications and Immune Infiltration Characteristics of Chromosomal Instability-Related Dysregulated CeRNA in Lung Adenocarcinoma.

Authors:  Shengnan Guo; Tianhao Li; Dahua Xu; Jiankai Xu; Hong Wang; Jian Li; Xiaoman Bi; Meng Cao; Zhizhou Xu; Qianfeng Xia; Ying Cui; Kongning Li
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  5 in total

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