Literature DB >> 23583283

Genome-wide methylation analysis of prostate tissues reveals global methylation patterns of prostate cancer.

Jian-Hua Luo1, Ying Ding, Rui Chen, George Michalopoulos, Joel Nelson, George Tseng, Yan P Yu.   

Abstract

Altered genome methylation is a hallmark of human malignancies. In this study, high-throughput analyses of concordant gene methylation and expression events were performed for 91 human prostate specimens, including prostate tumor (T), matched normal adjacent to tumor (AT), and organ donor (OD). Methylated DNA in genomic DNA was immunoprecipitated with anti-methylcytidine antibodies and detected by Affymetrix human whole genome SNP 6.0 chips. Among the methylated CpG islands, 11,481 islands were found located in the promoter and exon 1 regions of 9295 genes. Genes (7641) were methylated frequently across OD, AT, and T samples, whereas 239 genes were differentially methylated in only T and 785 genes in both AT and T but not OD. Genes with promoter methylation and concordantly suppressed expression were identified. Pathway analysis suggested that many of the methylated genes in T and AT are involved in cell growth and mitogenesis. Classification analysis of the differentially methylated genes in T or OD produced a specificity of 89.4% and a sensitivity of 85.7%. The T and AT groups, however, were only slightly separated by the prediction analysis, indicating a strong field effect. A gene methylation prediction model was shown to predict prostate cancer relapse with sensitivity of 80.0% and specificity of 85.0%. These results suggest methylation patterns useful in predicting clinical outcomes of prostate cancer.
Copyright © 2013 American Society for Investigative Pathology. Published by Elsevier Inc. All rights reserved.

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Year:  2013        PMID: 23583283      PMCID: PMC3668028          DOI: 10.1016/j.ajpath.2013.02.040

Source DB:  PubMed          Journal:  Am J Pathol        ISSN: 0002-9440            Impact factor:   4.307


  57 in total

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  25 in total

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Authors:  Yan P Yu; Ying Ding; Rui Chen; Serena G Liao; Bao-Guo Ren; Amantha Michalopoulos; George Michalopoulos; Joel Nelson; George C Tseng; Jian-Hua Luo
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2.  Harnessing novel modalities: field carcinogenesis detection for personalizing prostate cancer management.

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Review 4.  Discovery and Classification of Fusion Transcripts in Prostate Cancer and Normal Prostate Tissue.

Authors:  Jian-Hua Luo; Silvia Liu; Ze-Hua Zuo; Rui Chen; George C Tseng; Yan P Yu
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5.  Methylation in benign prostate and risk of disease progression in men subsequently diagnosed with prostate cancer.

Authors:  Benjamin A Rybicki; Andrew Rundle; Oleksandr N Kryvenko; Nicoleta Mitrache; Kieu C Do; Michelle Jankowski; Dhananjay A Chitale; Sheri Trudeau; Steven A Belinsky; Deliang Tang
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6.  Epigenomic profiling of DNA methylation in paired prostate cancer versus adjacent benign tissue.

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10.  Nanocytological field carcinogenesis detection to mitigate overdiagnosis of prostate cancer: a proof of concept study.

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Journal:  PLoS One       Date:  2015-02-23       Impact factor: 3.240

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