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   Allelic Imbalance in Regulation of ANRIL through Chromatin Interaction at 9p21 Endometriosis Risk Locus  
   
نویسنده nakaoka h. ,gurumurthy a. ,hayano t. ,ahmadloo s. ,omer w.h. ,yoshihara k. ,yamamoto a. ,kurose k. ,enomoto t. ,akira s. ,hosomichi k. ,inoue i.
منبع plos genetics - 2016 - دوره : 12 - شماره : 4
چکیده    Genome-wide association studies (gwass) have discovered numerous single nucleotide polymorphisms (snps) associated with human complex disorders. however,functional characterization of the disease-associated snps remains a formidable challenge. here we explored regulatory mechanism of a snp on chromosome 9p21 associated with endometriosis by leveraging “allele-specific” functional genomic approaches. by re-sequencing 1.29 mb of 9p21 region and scrutinizing dnase-seq data from the encode project,we prioritized rs17761446 as a candidate functional variant that was in perfect linkage disequilibrium with the original gwas snp (rs10965235) and located on dnase i hypersensitive site. chromosome conformation capture followed by high-throughput sequencing revealed that the protective g allele of rs17761446 exerted stronger chromatin interaction with anril promoter. we demonstrated that the protective allele exhibited preferential binding affinities to tcf7l2 and ep300 by bioinformatics and chromatin immunoprecipitation (chip) analyses. chip assays for histone h3 lysine 27 acetylation and rna polymerase ii reinforced the enhancer activity of the snp site. the allele specific expression analysis for eutopic endometrial tissues and endometrial carcinoma cell lines showed that rs17761446 was a cis-regulatory variant where g allele was associated with increased anril expression. our work illuminates the allelic imbalances in a series of transcriptional regulation from factor binding to gene expression mediated by chromatin interaction underlie the molecular mechanism of 9p21 endometriosis risk locus. functional genomics on common disease will unlock functional aspect of genotype-phenotype correlations in the post-gwas stage. © 2016 nakaoka et al.
آدرس division of human genetics,department of integrated genetics,national institute of genetics,mishima,shizuoka, Japan, division of human genetics,department of integrated genetics,national institute of genetics,mishima,shizuoka, Japan, division of human genetics,department of integrated genetics,national institute of genetics,mishima,shizuoka, Japan, division of human genetics,department of integrated genetics,national institute of genetics,mishima,shizuoka, Japan, division of human genetics,department of integrated genetics,national institute of genetics,mishima,shizuoka, Japan, department of obstetrics and gynecology,niigata university graduate school of medical and dental sciences,chuo-ku,niigata, Japan, department of obstetrics and gynecology,nippon medical school,bunkyo-ku,tokyo, Japan, department of obstetrics and gynecology,nippon medical school,bunkyo-ku,tokyo, Japan, department of obstetrics and gynecology,niigata university graduate school of medical and dental sciences,chuo-ku,niigata, Japan, department of obstetrics and gynecology,nippon medical school,bunkyo-ku,tokyo, Japan, division of human genetics,department of integrated genetics,national institute of genetics,mishima,shizuoka,japan,department of bioinformatics and genomics,graduate school of medical sciences,kanazawa university,kanazawa,ishikawa, Japan, division of human genetics,department of integrated genetics,national institute of genetics,mishima,shizuoka, Japan
 
     
   
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