Genome-wide association study for colorectal cancer identifies risk polymorphisms in German familial cases and implicates MAPK signalling pathways in disease susceptibility.
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Michael Krawczak | Henry Völzke | Barbara Burwinkel | Pavel Vodicka | Hermann Brenner | Jochen Hampe | Reinhard Büttner | Asta Försti | Jenny Chang-Claude | Stefan Schreiber | Michael Hoffmeister | Stephan Buch | Matthias Kloor | Jan Novotny | Bowang Chen | Peter Propping | Kari Hemminki | M. Kloor | H. Brenner | J. Chang-Claude | M. Hoffmeister | H. Völzke | J. Hampe | M. Krawczak | K. Hemminki | A. Naccarati | B. Burwinkel | A. Försti | K. Schulmann | H. Schackert | R. Büttner | Bowang Chen | P. Propping | S. Buch | C. Schafmayer | B. Pardini | P. Vodicka | J. Lascorz | N. Rahner | Heike Görgens | Hans K Schackert | Verena Steinke | Nils Rahner | Elke Holinski-Feder | Jesús Lascorz | Monika Morak | Barbara Pardini | Alessio Naccarati | Ludmila Vodickova | Clemens Schafmayer | H. Görgens | M. Morak | V. Steinke | Timm Goecke | Karsten Schulmann | Cristoph Engel | Nelli Kunkel | Marianne Weires | Clemens D Bröring | T. Goecke | L. Vodickova | J. Novotný | E. Holinski-Feder | C. Engel | S. Schreiber | M. Weires | C. D. Bröring | Nelli Kunkel
[1] Hideo Tanaka,et al. Association between an 8q24 locus and the risk of colorectal cancer in Japanese , 2009, BMC Cancer.
[2] A. Singleton,et al. Genomewide association studies and human disease. , 2009, The New England journal of medicine.
[3] L. Medeiros,et al. Sonic hedgehog signaling proteins and ATP-binding cassette G2 are aberrantly expressed in diffuse large B-Cell lymphoma , 2009, Modern Pathology.
[4] B. Maher. Personal genomes: The case of the missing heritability , 2008, Nature.
[5] J Chang-Claude,et al. Does a negative screening colonoscopy ever need to be repeated? , 2005, Gut.
[6] Jukka-Pekka Mecklin,et al. Explaining the Familial Colorectal Cancer Risk Associated with Mismatch Repair (MMR)-Deficient and MMR-Stable Tumors , 2007, Clinical Cancer Research.
[7] Manuel A. R. Ferreira,et al. Gene ontology analysis of GWA study data sets provides insights into the biology of bipolar disorder. , 2009, American journal of human genetics.
[8] Y. Okamoto,et al. Identification of molecular targets in head and neck squamous cell carcinomas based on genome-wide gene expression profiling. , 2007, Oncology reports.
[9] Esko Ukkonen,et al. The common colorectal cancer predisposition SNP rs6983267 at chromosome 8q24 confers potential to enhanced Wnt signaling , 2009, Nature Genetics.
[10] Mark Daly,et al. Haploview: analysis and visualization of LD and haplotype maps , 2005, Bioinform..
[11] P. Cheah. Recent advances in colorectal cancer genetics and diagnostics. , 2009, Critical reviews in oncology/hematology.
[12] Y. Doki,et al. Integrative approach for differentially overexpressed genes in gastric cancer by combining large-scale gene expression profiling and network analysis , 2008, British Journal of Cancer.
[13] Y. Asmann,et al. A Transposon-Based Genetic Screen in Mice Identifies Genes Altered in Colorectal Cancer , 2009, Science.
[14] Jing-Yuan Fang,et al. The MAPK signalling pathways and colorectal cancer. , 2005, The Lancet. Oncology.
[15] Brad T. Sherman,et al. Bioinformatics enrichment tools: paths toward the comprehensive functional analysis of large gene lists , 2008, Nucleic acids research.
[16] Oliver Sieber,et al. A genome-wide association scan of tag SNPs identifies a susceptibility variant for colorectal cancer at 8q24.21 , 2007, Nature Genetics.
[17] K. Frazer,et al. Human genetic variation and its contribution to complex traits , 2009, Nature Reviews Genetics.
[18] Hemant K Tiwari,et al. Problems with Genome-Wide Association Studies , 2007, Science.
[19] J. Potter,et al. Variants on 9p24 and 8q24 are associated with risk of colorectal cancer: results from the Colon Cancer Family Registry. , 2007, Cancer research.
[20] N. Camp,et al. Meta Association of Colorectal Cancer Confirms Risk Alleles at 8q24 and 18q21 , 2009, Cancer Epidemiology Biomarkers & Prevention.
[21] U. John,et al. Study of Health in Pomerania (SHIP): A health examination survey in an east German region: Objectives and design , 2005, Sozial- und Präventivmedizin.
[22] U. John,et al. Investigation of the colorectal cancer susceptibility region on chromosome 8q24.21 in a large German case‐control sample , 2009, International journal of cancer.
[23] John L Hopper,et al. Multiple loci with different cancer specificities within the 8q24 gene desert. , 2008, Journal of the National Cancer Institute.
[24] Oliver Sieber,et al. A genome-wide association study shows that common alleles of SMAD7 influence colorectal cancer risk , 2007, Nature Genetics.
[25] I. Deary,et al. Genome-wide association scan identifies a colorectal cancer susceptibility locus on 11q23 and replicates risk loci at 8q24 and 18q21 , 2008, Nature Genetics.
[26] G. Parmigiani,et al. The Consensus Coding Sequences of Human Breast and Colorectal Cancers , 2006, Science.
[27] Pavel Vodicka,et al. Genetic variation in adipokine genes and risk of colorectal cancer. , 2009, European journal of endocrinology.
[28] M. Kloor,et al. Ten recently identified associations between nsSNPs and colorectal cancer could not be replicated in German families. , 2008, Cancer letters.
[29] Steven Gallinger,et al. Meta-analysis of genome-wide association data identifies four new susceptibility loci for colorectal cancer , 2008, Nature Genetics.
[30] G. Tortora,et al. EGFR antagonists in cancer treatment. , 2008, The New England journal of medicine.
[31] K. Hemminki,et al. Surveying the Genomic Landscape of Colorectal Cancer , 2009, The American Journal of Gastroenterology.
[32] R. Wolff,et al. Increased risk of colon cancer associated with a genetic polymorphism of SMAD7. , 2010, Cancer research.
[33] J. Kaprio,et al. Environmental and heritable factors in the causation of cancer--analyses of cohorts of twins from Sweden, Denmark, and Finland. , 2000, The New England journal of medicine.
[34] D. Kerr,et al. Common genetic variants at the CRAC1 (HMPS) locus on chromosome 15q13.3 influence colorectal cancer risk , 2008, Nature Genetics.
[35] Zanke,et al. Genome-wide association scan identifies a colorectal cancer susceptibility locus on 11q23 and replicates risk loci at 8q24 and 18q21 , 2008, Nature Genetics.
[36] A. Sparks,et al. The Genomic Landscapes of Human Breast and Colorectal Cancers , 2007, Science.
[37] A. Tenesa,et al. New insights into the aetiology of colorectal cancer from genome-wide association studies , 2009, Nature Reviews Genetics.
[38] Julian Peto,et al. A genome-wide association study identifies colorectal cancer susceptibility loci on chromosomes 10p14 and 8q23.3 , 2008, Nature Genetics.
[39] D. Duggan,et al. Recent developments in genomewide association scans: a workshop summary and review. , 2005, American journal of human genetics.
[40] Manuel A. R. Ferreira,et al. PLINK: a tool set for whole-genome association and population-based linkage analyses. , 2007, American journal of human genetics.
[41] D. Easton,et al. EMGM Abstracts , 2003, Genetic epidemiology.
[42] Simon Heath,et al. Lung cancer susceptibility locus at 5p15.33 , 2008, Nature Genetics.
[43] R. Hayes,et al. Pooled analysis of genetic variation at chromosome 8q24 and colorectal neoplasia risk. , 2008, Human molecular genetics.
[44] G. Casey,et al. A Common 8q24 Variant and the Risk of Colon Cancer: A Population-Based Case-Control Study , 2008, Cancer Epidemiology Biomarkers & Prevention.
[45] H. Cordell. Detecting gene–gene interactions that underlie human diseases , 2009, Nature Reviews Genetics.
[46] R. Mägi,et al. Genetic Structure of Europeans: A View from the North–East , 2009, PloS one.
[47] Jing Chen,et al. ToppGene Suite for gene list enrichment analysis and candidate gene prioritization , 2009, Nucleic Acids Res..
[48] J. Hampe,et al. Genetic investigation of DNA‐repair pathway genes PMS2, MLH1, MSH2, MSH6, MUTYH, OGG1 and MTH1 in sporadic colon cancer , 2007, International journal of cancer.
[49] L. Delacroix,et al. Hedgehog signaling pathway is inactive in colorectal cancer cell lines , 2007, International journal of cancer.
[50] Simon C. Potter,et al. Genome-wide association study of 14,000 cases of seven common diseases and 3,000 shared controls , 2007, Nature.
[51] Steven Gallinger,et al. Genome-wide association scan identifies a colorectal cancer susceptibility locus on chromosome 8q24 , 2007, Nature Genetics.
[52] M. McCarthy,et al. Genome-wide association studies for complex traits: consensus, uncertainty and challenges , 2008, Nature Reviews Genetics.
[53] M. Kloor,et al. Spectrum and frequencies of mutations in MSH2 and MLH1 identified in 1,721 German families suspected of hereditary nonpolyposis colorectal cancer , 2005, International journal of cancer.
[54] Julian Peto,et al. Refinement of the basis and impact of common 11q23.1 variation to the risk of developing colorectal cancer. , 2008, Human molecular genetics.
[55] Michael Krawczak,et al. PopGen: Population-Based Recruitment of Patients and Controls for the Analysis of Complex Genotype-Phenotype Relationships , 2006, Public Health Genomics.
[56] Judy H. Cho,et al. Finding the missing heritability of complex diseases , 2009, Nature.
[57] J. Carpten,et al. Family-Based Samples Can Play an Important Role in Genetic Association Studies , 2008, Cancer Epidemiology Biomarkers & Prevention.
[58] J. H. Moore,et al. Multifactor-dimensionality reduction reveals high-order interactions among estrogen-metabolism genes in sporadic breast cancer. , 2001, American journal of human genetics.
[59] J. Houwing-Duistermaat,et al. Enrichment of Low Penetrance Susceptibility Loci in a Dutch Familial Colorectal Cancer Cohort , 2009, Cancer Epidemiology, Biomarkers & Prevention.
[60] Ralf Herwig,et al. ConsensusPathDB—a database for integrating human functional interaction networks , 2008, Nucleic Acids Res..