TY - JOUR
T1 - Genome-wide association identifies diverse causes of common variable immunodeficiency
AU - Orange, Jordan S.
AU - Glessner, Joseph T.
AU - Resnick, Elena
AU - Sullivan, Kathleen E.
AU - Lucas, Mary
AU - Ferry, Berne
AU - Kim, Cecilia E.
AU - Hou, Cuiping
AU - Wang, Fengxiang
AU - Chiavacci, Rosetta
AU - Kugathasan, Subra
AU - Sleasman, John W.
AU - Baldassano, Robert
AU - Perez, Elena E.
AU - Chapel, Helen
AU - Cunningham-Rundles, Charlotte
AU - Hakonarson, Hakon
N1 - Funding Information:
Disclosure of potential conflict of interest: J. S. Orange has consultant arrangements with Talecris Biotherapeutics, Baxter Health, CSL Behring, and IBT Reference Labs; is a speaker for Baxter Health; receives research support from the National Institutes of Health (NIH)/National Institute of Allergy and Infectious Diseases (NIAID) ; is an Elected Officer of the American Academy of Allergy, Asthma & Immunology (AAAAI); and is on the advisory board for the Immune Deficiency Foundation. K. E. Sullivan receives research support from the NIH and is a consultant for the Immune Deficiency Foundation. J. W. Sleasman receives research support from the NIH, the Florida Department of Health, and the National Oceanic Atmospheric Administration. E. E. Perez has consultant arrangements with Baxter and CSL Behring. The rest of the authors have declared that they have no conflict of interest.
Funding Information:
Children’s Hospital of Philadelphia support was from the Children’s Hospital of Philadelphia Institutional Development Award to the Center for Applied Genomics, which funded all genotyping (to H.H.); a Research Development Award from the Cotswold Foundation (to H.H.); the Jeffrey Modell foundation (to J.S.O.); and National Institutes of Health (NIH) grant AI-079731 (to J.S.O.). Oxford support was from the NIHR Oxford Biomedical Research Centre, Baxter Healthcare (general support to the department not specific to this project), Talecris (general support to the department not specific to this project), and the Jeffrey Modell Foundation for unrestricted gifts; the Primary Immunodeficiency Association for the Centre of Excellence award; and the European Commission for EU 7th FP EURO-PADnet number 201549. University of South Florida support was from NIH grant 5R03AI083904 (to E.E.P.). Mount Sinai support was from NIH grants, AI-101093, AI-467320, AI-48693 , NIAID Contract 03-22, and the David S Gottesman Immunology Chair (all to C.C.-R.).
PY - 2011/6
Y1 - 2011/6
N2 - Background: Common variable immunodeficiency (CVID) is a heterogeneous immune defect characterized by hypogammaglobulinemia, failure of specific antibody production, susceptibility to infections, and an array of comorbidities. Objective: To address the underlying immunopathogenesis of CVID and comorbidities, we conducted the first genome-wide association and gene copy number variation (CNV) study in patients with CVID. Methods: Three hundred sixty-three patients with CVID from 4 study sites were genotyped with 610,000 single nucleotide polymorphisms (SNPs). Patients were divided into a discovery cohort of 179 cases in comparison with 1,917 control subjects and a replication cohort of 109 cases and 1,114 control subjects. Results: Our analyses detected strong association with the MHC region and association with a disintegrin and metalloproteinase (ADAM) genes (P combined = 1.96 × 10-7) replicated in the independent cohort. CNV analysis defined 16 disease-associated deletions and duplications, including duplication of origin recognition complex 4L (ORC4L) that was unique to 15 cases (P = 8.66 × 10-16), as well as numerous unique rare intraexonic deletions and duplications suggesting multiple novel genetic causes of CVID. Furthermore, the 1,000 most significant SNPs were strongly predictive of the CVID phenotype by using a Support Vector Machine algorithm with positive and negative predictive values of 1.0 and 0.957, respectively. Conclusion: Our integrative genome-wide analysis of SNP genotypes and CNVs has uncovered multiple novel susceptibility loci for CVID, both common and rare, which is consistent with the highly heterogeneous nature of CVID. These results provide new mechanistic insights into immunopathogenesis based on these unique genetic variations and might allow for improved diagnosis of CVID based on accurate prediction of the CVID clinical phenotypes by using our Support Vector Machine model.
AB - Background: Common variable immunodeficiency (CVID) is a heterogeneous immune defect characterized by hypogammaglobulinemia, failure of specific antibody production, susceptibility to infections, and an array of comorbidities. Objective: To address the underlying immunopathogenesis of CVID and comorbidities, we conducted the first genome-wide association and gene copy number variation (CNV) study in patients with CVID. Methods: Three hundred sixty-three patients with CVID from 4 study sites were genotyped with 610,000 single nucleotide polymorphisms (SNPs). Patients were divided into a discovery cohort of 179 cases in comparison with 1,917 control subjects and a replication cohort of 109 cases and 1,114 control subjects. Results: Our analyses detected strong association with the MHC region and association with a disintegrin and metalloproteinase (ADAM) genes (P combined = 1.96 × 10-7) replicated in the independent cohort. CNV analysis defined 16 disease-associated deletions and duplications, including duplication of origin recognition complex 4L (ORC4L) that was unique to 15 cases (P = 8.66 × 10-16), as well as numerous unique rare intraexonic deletions and duplications suggesting multiple novel genetic causes of CVID. Furthermore, the 1,000 most significant SNPs were strongly predictive of the CVID phenotype by using a Support Vector Machine algorithm with positive and negative predictive values of 1.0 and 0.957, respectively. Conclusion: Our integrative genome-wide analysis of SNP genotypes and CNVs has uncovered multiple novel susceptibility loci for CVID, both common and rare, which is consistent with the highly heterogeneous nature of CVID. These results provide new mechanistic insights into immunopathogenesis based on these unique genetic variations and might allow for improved diagnosis of CVID based on accurate prediction of the CVID clinical phenotypes by using our Support Vector Machine model.
KW - Primary immunodeficiency
KW - antibody deficiency
KW - common variable immunodeficiency
KW - copy number variation
KW - genetics
KW - genome-wide association
KW - immunodiagnostics
UR - https://www.scopus.com/pages/publications/79957874121
U2 - 10.1016/j.jaci.2011.02.039
DO - 10.1016/j.jaci.2011.02.039
M3 - Article
AN - SCOPUS:79957874121
SN - 0091-6749
VL - 127
SP - 1360-1367.e6
JO - Journal of Allergy and Clinical Immunology
JF - Journal of Allergy and Clinical Immunology
IS - 6
ER -