Independent and population-specific association of risk variants at the IRGM locus with Crohn's disease

DNA polymorphisms in a region on chromosome 5q33.1 which contains two genes, immunity related GTPase related family, M (IRGM) and zinc finger protein 300 (ZNF300), are associated with Crohn's disease (CD). The deleted allele of a 20 kb copy number variation (CNV) upstream of IRGM was recently shown to be in strong linkage disequilibrium (LD) with the CD-associated single nucleotide polymorphisms and is itself associated with CD (P < 0.01). The deletion was correlated with increased or reduced expression of IRGM in transformed cells in a cell line-dependent manner, and has been proposed as a likely causal variant. We report here that small insertion/deletion polymorphisms in the promoter and 5′ untranslated region of IRGM are, together with the CNV, strongly associated with CD (P = 1.37 × 10−5 to 1.40 × 10−9), and that the CNV and the 5′-untranslated region variant −308(GTTT)5 contribute independently to CD susceptibility (P = 2.6 × 10−7 and P = 2 × 10−5, respectively). We also show that the CD risk haplotype is associated with a significant decrease in IRGM expression (P < 10−12) in untransformed lymphocytes from CD patients. Further analysis of these variants in a Japanese CD case–control sample and of IRGM expression in HapMap populations revealed that neither the IRGM insertion/deletion polymorphisms nor the CNV was associated with CD or with altered IRGM expression in the Asian population. This suggests that the involvement of the IRGM risk haplotype in the pathogenesis of CD requires gene–gene or gene–environment interactions which are absent in Asian populations, or that none of the variants analysed are causal, and that the true causal variants arose after the European–Asian split.

[1]  K. Huse,et al.  Haplotype structure and association to Crohn's disease of CARD15 mutations in two ethnically divergent populations , 2003, European Journal of Human Genetics.

[2]  K. Mossman The Wellcome Trust Case Control Consortium, U.K. , 2008 .

[3]  M. McCarthy,et al.  Genome-wide association studies for complex traits: consensus, uncertainty and challenges , 2008, Nature Reviews Genetics.

[4]  E. Owusu-Dabo,et al.  Genotyping of IRGM tetranucleotide promoter oligorepeats by fluorescence resonance energy transfer. , 2009, BioTechniques.

[5]  Judy H Cho,et al.  Genome-wide association study identifies new susceptibility loci for Crohn disease and implicates autophagy in disease pathogenesis , 2007, Nature Genetics.

[6]  Huanjie Shao,et al.  Identification of the DNA binding element of the human ZNF300 protein , 2008, Cellular & Molecular Biology Letters.

[7]  Thomas Lengauer,et al.  A genome-wide association scan of nonsynonymous SNPs identifies a susceptibility variant for Crohn disease in ATG16L1 , 2007, Nature Genetics.

[8]  T. Merriman,et al.  Confirmation of association of IRGM and NCF4 with ileal Crohn's disease in a population-based cohort , 2008, Genes and Immunity.

[9]  S. Fisher,et al.  A nonsynonymous SNP in ATG16L1 predisposes to ileal Crohn's disease and is independent of CARD15 and IBD5. , 2007, Gastroenterology.

[10]  D. Strachan,et al.  Sequence variants in IL10, ARPC2 and multiple other loci contribute to ulcerative colitis susceptibility , 2008, Nature Genetics.

[11]  J. Ragoussis,et al.  Single nucleotide polymorphisms in TNFSF15 confer susceptibility to Crohn's disease. , 2005, Human molecular genetics.

[12]  Judy H. Cho,et al.  Genome-wide association defines more than 30 distinct susceptibility loci for Crohn's disease , 2008, Nature Genetics.

[13]  Alastair Forbes,et al.  Sequence variants in the autophagy gene IRGM and multiple other replicating loci contribute to Crohn's disease susceptibility , 2007, Nature Genetics.

[14]  Simon C. Potter,et al.  Genome-wide association study of 14,000 cases of seven common diseases and 3,000 shared controls , 2007, Nature.

[15]  V. Deretic,et al.  Human IRGM Induces Autophagy to Eliminate Intracellular Mycobacteria , 2006, Science.

[16]  M. Kubo,et al.  Positive association of genetic variants in the upstream region of NKX2-3 with Crohn’s disease in Japanese patients , 2008, Gut.

[17]  Philip M. Kim,et al.  Paired-End Mapping Reveals Extensive Structural Variation in the Human Genome , 2007, Science.

[18]  C. Power,et al.  Cohort profile: 1958 British birth cohort (National Child Development Study). , 2006, International journal of epidemiology.

[19]  F. Dudbridge Pedigree disequilibrium tests for multilocus haplotypes , 2003, Genetic epidemiology.

[20]  Christopher G. Mathew,et al.  New links to the pathogenesis of Crohn disease provided by genome-wide association scans , 2008, Nature Reviews Genetics.

[21]  Thomas J Hudson,et al.  Survey of allelic expression using EST mining. , 2005, Genome research.

[22]  Can Alkan,et al.  Death and Resurrection of the Human IRGM Gene , 2009, PLoS genetics.

[23]  D. Conrad,et al.  Global variation in copy number in the human genome , 2006, Nature.

[24]  C. Wijmenga,et al.  Confirmation of Multiple Crohn's Disease Susceptibility Loci in a Large Dutch–Belgian Cohort , 2009, The American Journal of Gastroenterology.

[25]  Philippe Froguel,et al.  Array CGH analysis of copy number variation identifies 1284 new genes variant in healthy white males: implications for association studies of complex diseases. , 2007, Human molecular genetics.

[26]  H. Drummond,et al.  Germline variants of IRGM in childhood-onset Crohn’s disease , 2009, Gut.

[27]  Yusuke Nakamura,et al.  Absence of mutation in the NOD2/CARD15 gene among 483 Japanese patients with Crohn's disease , 2002, Journal of Human Genetics.

[28]  Jian Huang,et al.  Identification and functional analysis of a novel human KRAB/C2H2 zinc finger gene ZNF300. , 2004, Biochimica et biophysica acta.

[29]  S. Niemann,et al.  Autophagy Gene Variant IRGM −261T Contributes to Protection from Tuberculosis Caused by Mycobacterium tuberculosis but Not by M. africanum Strains , 2009, PLoS pathogens.

[30]  Mark Daly,et al.  Haploview: analysis and visualization of LD and haplotype maps , 2005, Bioinform..

[31]  D. Dunn,et al.  The interferon-inducible p47 (IRG) GTPases in vertebrates: loss of the cell autonomous resistance mechanism in the human lineage , 2005, Genome Biology.

[32]  R. Beyaert,et al.  ABINs: A20 binding inhibitors of NF-kappa B and apoptosis signaling. , 2009, Biochemical pharmacology.

[33]  B. Alizadeh,et al.  Association of ATG16L1 and IRGM genes polymorphisms with inflammatory bowel disease: a meta-analysis approach , 2009, Genes and Immunity.

[34]  Judy H Cho,et al.  Deletion polymorphism upstream of IRGM associated with altered IRGM expression and Crohn's disease , 2008, Nature Genetics.