Literature DB >> 19004026

Genetic and epigenetic inactivation of LPL gene in human prostate cancer.

Jin Woo Kim1, Yu Cheng, Wennuan Liu, Tao Li, Srinivasan Yegnasubramanian, Siqun L Zheng, Jianfeng Xu, William B Isaacs, Bao-Li Chang.   

Abstract

Lipoprotein lipase (LPL) is in chromosome 8p22, site of one of the most common somatic deletions in prostate tumors. Additionally, a CpG island (CGI) was identified in the LPL promoter region. To test the hypothesis that LPL is a tumor suppressor gene, which is inactivated by somatic deletion and hypermethylation in prostate cancer, we evaluated somatic DNA deletion and methylation status at LPL in 56 pairs of DNA samples isolated from prostate cancer tissues and matching normal controls and 11 prostate cell lines. We found that the DNA in 21 of 56 primary cancers (38%) was methylated in the LPL promoter CGI, whereas no methylation was detected in any normal samples. In addition, we found a hemizygous deletion at LPL in 38 of the 56 tumors (68%). When the results of deletion and methylation were considered together, we found LPL promoter CGI methylation occurred in 45% of LPL deleted tumors and in 22% of LPL retained tumors. Within several clinical characteristics tested, the preoperative PSA levels were found to be significantly higher in subjects with LPL promoter CGI methylation compared with subjects without LPL promoter methylation (p=0.0012). Additionally, demethylation of the LPL promoter CGI was accompanied by transcriptional reactivation of LPL in the prostate cancer cell lines DU145 and PC3. In summary, we report a novel finding that the LPL gene is commonly methylated in prostate tumors, and our results suggest that biallelic inactivation of LPL by chromosomal deletion and promoter hypermethylation may play a role in human prostate cancer. Copyright (c) 2008 Wiley-Liss, Inc.

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Year:  2009        PMID: 19004026      PMCID: PMC3667349          DOI: 10.1002/ijc.23972

Source DB:  PubMed          Journal:  Int J Cancer        ISSN: 0020-7136            Impact factor:   7.396


  39 in total

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2.  DNA methylation mapping by tag-modified bisulfite genomic sequencing.

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3.  Comprehensive assessment of DNA copy number alterations in human prostate cancers using Affymetrix 100K SNP mapping array.

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Journal:  Genes Chromosomes Cancer       Date:  2006-11       Impact factor: 5.006

4.  Differential effects of lipoprotein lipase on tumor necrosis factor-alpha and interferon-gamma-mediated gene expression in human endothelial cells.

Authors:  Rama S Kota; Chilakamarti V Ramana; Fatima A Tenorio; Richard I Enelow; John C Rutledge
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5.  Protein phosphatase type 2Calpha and 2Cbeta are involved in fatty acid-induced apoptosis of neuronal and endothelial cells.

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8.  Genetic and epigenetic alterations of LTF at 3p21.3 in nasopharyngeal carcinoma.

Authors:  Hong-Mei Yi; Hui Li; Dan Peng; He-Jun Zhang; Lei Wang; Ming Zhao; Kai-Tai Yao; Cai-Ping Ren
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10.  DNA copy number alterations in prostate cancers: a combined analysis of published CGH studies.

Authors:  Jishan Sun; Wennuan Liu; Tamara S Adams; Jielin Sun; Xingnan Li; Aubrey R Turner; Baoli Chang; Jin Woo Kim; Siqun Lilly Zheng; William B Isaacs; Jianfeng Xu
Journal:  Prostate       Date:  2007-05-15       Impact factor: 4.104

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  20 in total

Review 1.  Promoter hypermethylation in prostate cancer.

Authors:  Jong Y Park
Journal:  Cancer Control       Date:  2010-10       Impact factor: 3.302

Review 2.  Lipids and cancer: Emerging roles in pathogenesis, diagnosis and therapeutic intervention.

Authors:  Lisa M Butler; Ylenia Perone; Jonas Dehairs; Leslie E Lupien; Vincent de Laat; Ali Talebi; Massimo Loda; William B Kinlaw; Johannes V Swinnen
Journal:  Adv Drug Deliv Rev       Date:  2020-07-23       Impact factor: 15.470

3.  Loss of chromosome 9p21 and decreased p16 expression correlate with malignant gastrointestinal stromal tumor.

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4.  Reduced expression of MTUS1 mRNA is correlated with poor prognosis in bladder cancer.

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5.  Identification of collaboration patterns of dysfunctional pathways in breast cancer.

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6.  Hepcidin regulation in prostate and its disruption in prostate cancer.

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7.  Use of integrative epigenetic and cytogenetic analyses to identify novel tumor-suppressor genes in malignant melanoma.

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8.  DNA methylation in promoter region as biomarkers in prostate cancer.

Authors:  Mihi Yang; Jong Y Park
Journal:  Methods Mol Biol       Date:  2012

Review 9.  DNA methylation changes in prostate cancer: current developments and future clinical implementation.

Authors:  Mohammad Obaidul Hoque
Journal:  Expert Rev Mol Diagn       Date:  2009-04       Impact factor: 5.225

10.  Associations of the ABCA1 and LPL Gene Polymorphisms With Lipid Levels in a Hyperlipidemic Population.

Authors:  Fang Tao; Justin Weinstock; Scott A Venners; Jun Cheng; Yi-Hsiang Hsu; Yanfeng Zou; Faming Pan; Shanqun Jiang; Xiangdong Zha; Xiping Xu
Journal:  Clin Appl Thromb Hemost       Date:  2017-09-11       Impact factor: 2.389

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