The Crohn’s disease associated SNP rs6651252 impacts MYC gene expression in human colonic epithelial cells
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[1] P. Coffer,et al. The Role of WNT Signaling in Mature T Cells: T Cell Factor Is Coming Home , 2018, The Journal of Immunology.
[2] Caitlyn A. Miller,et al. Distinct Histopathologic and Molecular Alterations in Inflammatory Bowel Disease-Associated Intestinal Adenocarcinoma: c-MYC Amplification is Common and Associated with Mucinous/Signet Ring Cell Differentiation. , 2018, Inflammatory bowel diseases.
[3] David C. Wilson,et al. IBD risk loci are enriched in multigenic regulatory modules encompassing putative causative genes , 2018, Nature Communications.
[4] Anna C. Salzberg,et al. RNA-seq implicates deregulation of the immune system in the pathogenesis of diverticulitis. , 2017, American journal of physiology. Gastrointestinal and liver physiology.
[5] R. Nusse,et al. Wnt/β-Catenin Signaling, Disease, and Emerging Therapeutic Modalities , 2017, Cell.
[6] J. Björkegren,et al. Systematic analysis of chromatin interactions at disease associated loci links novel candidate genes to inflammatory bowel disease , 2016, Genome Biology.
[7] P. D. de Bakker,et al. Extensive Association of Common Disease Variants with Regulatory Sequence , 2016, PloS one.
[8] F. Sipos,et al. Therapeutic aspects of c-MYC signaling in inflammatory and cancerous colonic diseases , 2016, World journal of gastroenterology.
[9] Zachary J. Heins,et al. Genomic Alterations Observed in Colitis-Associated Cancers Are Distinct From Those Found in Sporadic Colorectal Cancers and Vary by Type of Inflammatory Bowel Disease. , 2016, Gastroenterology.
[10] Y. Kawasawa,et al. The MYC 3′ Wnt-Responsive Element Drives Oncogenic MYC Expression in Human Colorectal Cancer Cells , 2016, Cancers.
[11] M. Pittman,et al. Whole-Exome Sequencing Analyses of Inflammatory Bowel Disease-Associated Colorectal Cancers. , 2016, Gastroenterology.
[12] N. Ishimaru,et al. Role of regulatory T cell in the pathogenesis of inflammatory bowel disease. , 2016, World journal of gastroenterology.
[13] M. Frey. Regenerating Reputations: Are Wnt and Myc the Good Guys After All? , 2016, Digestive Diseases and Sciences.
[14] G. Yochum,et al. A Role for MYC in Lithium-Stimulated Repair of the Colonic Epithelium After DSS-Induced Damage in Mice , 2016, Digestive Diseases and Sciences.
[15] G. Yochum,et al. Regulation of MYC gene expression by aberrant Wnt/β-catenin signaling in colorectal cancer. , 2015, World journal of biological chemistry.
[16] Judy H Cho,et al. Genetics of Inflammatory Bowel Diseases. , 2015, Gastroenterology.
[17] Judy H. Cho,et al. Association analyses identify 38 susceptibility loci for inflammatory bowel disease and highlight shared genetic risk across populations , 2015, Nature Genetics.
[18] M. D’Amato,et al. The history of genetics in inflammatory bowel disease , 2014, Annals of gastroenterology.
[19] E. Cuppen,et al. Many inflammatory bowel disease risk loci include regions that regulate gene expression in immune cells and the intestinal epithelium. , 2014, Gastroenterology.
[20] N. Barker. Adult intestinal stem cells: critical drivers of epithelial homeostasis and regeneration , 2013, Nature Reviews Molecular Cell Biology.
[21] G. Yochum,et al. The Myc 3′ Wnt Responsive Element Regulates Neutrophil Recruitment After Acute Colonic Injury in Mice , 2013, Digestive Diseases and Sciences.
[22] David C. Wilson,et al. Host-microbe interactions have shaped the genetic architecture of inflammatory bowel disease , 2012, Nature.
[23] Shane J. Neph,et al. Systematic Localization of Common Disease-Associated Variation in Regulatory DNA , 2012, Science.
[24] Data production leads,et al. An integrated encyclopedia of DNA elements in the human genome , 2012 .
[25] J. Dekker,et al. The long-range interaction landscape of gene promoters , 2012, Nature.
[26] G. Yochum,et al. The Myc 3′ Wnt-Responsive Element Regulates Homeostasis and Regeneration in the Mouse Intestinal Tract , 2012, Molecular and Cellular Biology.
[27] ENCODEConsortium,et al. An Integrated Encyclopedia of DNA Elements in the Human Genome , 2012, Nature.
[28] N. Caplen,et al. The 8q24 Gene Desert: An Oasis of Non-Coding Transcriptional Activity , 2012, Front. Gene..
[29] G. Yochum,et al. Wnt/β-Catenin Signaling Regulates Yes-associated Protein (YAP) Gene Expression in Colorectal Carcinoma Cells* , 2012, The Journal of Biological Chemistry.
[30] Zhenwu Lin,et al. Mutations in IRGM Are Associated With More Frequent Need for Surgery in Patients With Ileocolonic Crohn's Disease , 2012, Diseases of the colon and rectum.
[31] R. Young,et al. BET Bromodomain Inhibition as a Therapeutic Strategy to Target c-Myc , 2011, Cell.
[32] R. Xavier,et al. Genetics and pathogenesis of inflammatory bowel disease , 2011, Nature.
[33] G. Yochum. Multiple Wnt/ß-Catenin Responsive Enhancers Align with the MYC Promoter through Long-Range Chromatin Loops , 2011, PloS one.
[34] Ryan A. Flynn,et al. A unique chromatin signature uncovers early developmental enhancers in humans , 2011, Nature.
[35] Tariq Ahmad,et al. Genome-wide meta-analysis increases to 71 the number of confirmed Crohn's disease susceptibility loci , 2010, Nature Genetics.
[36] R. Young,et al. Histone H3K27ac separates active from poised enhancers and predicts developmental state , 2010, Proceedings of the National Academy of Sciences.
[37] William B. Smith,et al. Selective inhibition of BET bromodomains , 2010, Nature.
[38] M. Freedman,et al. Chromosome 8q24-Associated Cancers and MYC. , 2010, Genes & cancer.
[39] Daniel Bottomly,et al. Identification of β-catenin binding regions in colon cancer cells using ChIP-Seq , 2010, Nucleic acids research.
[40] Michael D. Cole,et al. Upregulation of c-MYC in cis through a Large Chromatin Loop Linked to a Cancer Risk-Associated Single-Nucleotide Polymorphism in Colorectal Cancer Cells , 2010, Molecular and Cellular Biology.
[41] Esko Ukkonen,et al. The common colorectal cancer predisposition SNP rs6983267 at chromosome 8q24 confers potential to enhanced Wnt signaling , 2009, Nature Genetics.
[42] Xi He,et al. Wnt/beta-catenin signaling: components, mechanisms, and diseases. , 2009, Developmental cell.
[43] Christopher A. Haiman,et al. The 8q24 cancer risk variant rs6983267 demonstrates long-range interaction with MYC in colorectal cancer , 2009, Nature Genetics.
[44] K. Basler,et al. β-Catenin hits chromatin: regulation of Wnt target gene activation , 2009, Nature Reviews Molecular Cell Biology.
[45] R. Eisenman,et al. Myc's broad reach. , 2008, Genes & development.
[46] R. Goodman,et al. A Genome-Wide Screen for β-Catenin Binding Sites Identifies a Downstream Enhancer Element That Controls c-Myc Gene Expression , 2008, Molecular and Cellular Biology.
[47] S. McWeeney,et al. Serial analysis of chromatin occupancy identifies β-catenin target genes in colorectal carcinoma cells , 2007, Proceedings of the National Academy of Sciences.
[48] S. McWeeney,et al. An Antisense Transcript Induced by Wnt/β-Catenin Signaling Decreases E2F4* , 2007, Journal of Biological Chemistry.
[49] Kathryn A. O’Donnell,et al. The c-Myc target gene network. , 2006, Seminars in cancer biology.
[50] A. Sparks,et al. Identification of c-MYC as a target of the APC pathway. , 1998, Science.
[51] Hans Clevers,et al. Depletion of epithelial stem-cell compartments in the small intestine of mice lacking Tcf-4 , 1998, Nature Genetics.
[52] K. Kinzler,et al. Constitutive Transcriptional Activation by a β-Catenin-Tcf Complex in APC−/− Colon Carcinoma , 1997, Science.
[53] J. Macartney,et al. Expression of c‐myc in non‐malignant and pre‐malignant gastrointestinal disorders , 1987, The Journal of pathology.
[54] S. Ng,et al. Understanding and Preventing the Global Increase of Inflammatory Bowel Disease. , 2017, Gastroenterology.
[55] David R. Liu,et al. CRISPR-Based Technologies for the Manipulation of Eukaryotic Genomes , 2017, Cell.
[56] A. Kaser,et al. Inflammatory bowel disease. , 2010, Annual review of immunology.
[57] C. Kuo,et al. The intestinal stem cell. , 2010, Progress in molecular biology and translational science.
[58] S. McWeeney,et al. An antisense transcript induced by Wnt/beta-catenin signaling decreases E2F4. , 2007, The Journal of biological chemistry.