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Integration of multiethnic fine-mapping and genomic annotation to prioritize candidate functional SNPs at prostate cancer susceptibility regions

  • Ying Han
  • , Dennis J. Hazelett
  • , Fredrik Wiklund
  • , Fredrick R. Schumacher
  • , Daniel O. Stram
  • , Sonja I. Berndt
  • , Zhaoming Wang
  • , Kristin A. Rand
  • , Robert N. Hoover
  • , Mitchell J. Machiela
  • , Merideth Yeager
  • , Laurie Burdette
  • , Charles C. Chung
  • , Amy Hutchinson
  • , Kai Yu
  • , Jianfeng Xu
  • , Ruth C. Travis
  • , Timothy J. Key
  • , Afshan Siddiq
  • , Federico Canzian
  • Atsushi Takahashi, Michiaki Kubo, Janet L. Stanford, Suzanne Kolb, Susan M. Gapstur, W. Ryan Diver, Victoria L. Stevens, Sara S. Strom, Curtis A. Pettaway, Ali Amin Al Olama, Zsofia Kote-Jarai, Rosalind A. Eeles, Edward D. Yeboah, Yao Tettey, Richard B. Biritwum, Andrew A. Adjei, Evelyn Tay, Ann Truelove, Shelley Niwa, Anand P. Chokkalingam, William B. Isaacs, Constance Chen, Sara Lindstrom, Loic Le Marchand, Edward L. Giovannucci, Mark Pomerantz, Henry Long, Fugen Li, Jing Ma, Meir Stampfer, Esther M. John, Sue A. Ingles, Rick A. Kittles, Adam B. Murphy, William J. Blot, Lisa B. Signorello, Wei Zheng, Demetrius Albanes, Jarmo Virtamo, Stephanie Weinstein, Barbara Nemesure, John Carpten, M. Cristina Leske, Suh Yuh Wu, Anselm J.M. Hennis, Benjamin A. Rybicki, Christine Neslund-Dudas, Ann W. Hsing, Lisa Chu, Phyllis J. Goodman, Eric A. Klein, S. Lilly Zheng, John S. Witte, Graham Casey, Elio Riboli, Qiyuan Li, Matthew L. Freedman, David J. Hunter, Henrik Gronberg, Michael B. Cook, Hidewaki Nakagawa, Peter Kraft, Stephen J. Chanock, Douglas F. Easton, Brian E. Henderson, Gerhard A. Coetzee, David V. Conti, Christopher A. Haiman
  • University of Southern California
  • Karolinska Institutet
  • National Institutes of Health
  • SAIC
  • NorthShore University HealthSystem
  • University of Oxford
  • School of Public Health
  • German Cancer Research Center
  • Laboratory for Statistical Analysis
  • Laboratory for Genotyping Development
  • Fred Hutchinson Cancer Research Center
  • University of Washington
  • American Cancer Society
  • Department of Epidemiology
  • University of Texas MD Anderson Cancer Center
  • University of Cambridge
  • The Institute of Cancer Research
  • Royal Marsden National Health Services (NHS) Foundation Trust
  • Korle Bu Teaching Hospital
  • University of Ghana
  • Westat
  • University of California at Berkeley
  • Johns Hopkins University
  • Department of Epidemiology
  • University of Hawai'i at Mānoa
  • Department of Epidemiology
  • Department of Medical Oncology
  • Dana-Farber Cancer Institute
  • Harvard University
  • Cancer Prevention Institute of California
  • Stanford University
  • University of Arizona
  • Northwestern University
  • International Epidemiology Institute
  • Vanderbilt University
  • National Institute for Health and Welfare
  • Translational Genomics Research Institute
  • Stony Brook University
  • The University of the West Indies
  • Henry Ford Health System
  • Cleveland Clinic Foundation
  • Wake Forest University
  • University of California at San Francisco
  • Imperial College London
  • Xiamen University
  • RIKEN

Research output: Contribution to journalArticlepeer-review

38 Scopus citations

Abstract

Interpretation of biological mechanisms underlying genetic risk associations for prostate cancer is complicated by the relatively large number of risk variants (n = 100) and the thousands of surrogate SNPs in linkage disequilibrium. Here, we combined three distinct approaches: multiethnic fine-mapping, putative functional annotation (based upon epigenetic data and genomeencoded features), and expression quantitative trait loci (eQTL) analyses, in an attempt to reduce this complexity. We examined 67 risk regions using genotyping and imputation-based fine-mapping in populations of European (cases/controls: 8600/6946), African (cases/controls: 5327/5136), Japanese (cases/controls: 2563/4391) and Latino (cases/controls: 1034/1046) ancestry. Markers at 55 regions passed a region-specific significance threshold (P-value cutoff range: 3.9 × 10-4-5.6 × 10-3) and in 30 regions we identified markers thatwere more significantly associated with risk than the previously reported variants in the multiethnic sample. Novel secondary signals (P < 5.0 × 10-6) were also detected in two regions (rs13062436/3q21 and rs17181170/3p12). Among 666 variants in the 55 regions with P-values within one order of magnitude of the most-associated marker, 193 variants (29%) in 48 regions overlapped with epigenetic or other putative functional marks. In 11 of the 55 regions, cis-eQTLs were detected with nearby genes. For 12 of the 55 regions (22%), the most significant region-specific, prostate-cancer associated variant represented the strongest candidate functional variant based on our annotations; the number of regions increased to 20 (36%) and 27 (49%) when examining the 2 and 3 most significantly associated variants in each region, respectively. These results have prioritized subsets of candidate variants for downstream functional evaluation.

Original languageEnglish
Pages (from-to)5603-5618
Number of pages16
JournalHuman Molecular Genetics
Volume24
Issue number19
DOIs
StatePublished - Oct 1 2015

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