The linkage disequilibrium maps of three human chromosomes across four populations reflect their demographic history and a common underlying recombination pattern

被引:58
作者
De la Vega, FM
Isaac, H
Collins, A
Scafe, CR
Halldórsson, BV
Su, XP
Lippert, RA
Wang, Y
Laig-Webster, M
Koehler, RT
Ziegle, JS
Wogan, LT
Stevens, JF
Leinen, KM
Olson, SJ
Guegler, KJ
You, XQ
Xu, LH
Hemken, HG
Kalush, F
Itakura, M
Zheng, Y
de Thé, G
O'Brien, SJ
Clark, AG
Istrail, S
Hunkapiller, MW
Spier, EG
Gilbert, DA
机构
[1] Appl Biosyst Inc, Foster City, CA 94404 USA
[2] Univ Southampton, Div Human Genet, Southampton SO16 6YD, Hants, England
[3] Celera Genom, Rockville, MD 20850 USA
[4] Univ Tokushima, Inst Genome Res, Tokushima 7708503, Japan
[5] Chinese Acad Prevent Med, Inst Virol, Beijing 100052, Peoples R China
[6] Inst Pasteur, CNRS, Dept Viral Oncol Epidemiol, F-75015 Paris, France
[7] NCI, Lab Genom Divers, Frederick, MD 21702 USA
[8] Cornell Univ, Ithaca, NY 14853 USA
关键词
D O I
10.1101/gr.3241705
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The extent and patterns of linkage disequilibrium (LD) determine the feasibility of association studies to map genes that underlie complex traits. Here we present a comparison of the patterns of LD across four major human populations (African-American, Caucasian, Chinese, and Japanese) with a high-resolution single-nucleotide polymorphism (SNP) map covering almost the entire length of chromosomes 6, 21, and 22. We constructed metric LD maps formulated such that the units measure the extent of useful LD for association mapping. LD reaches almost twice as far in chromosome 6 as in chromosomes 21 or 22, in agreement with their differences in recombination rates. By all measures used, out-of-Africa populations showed over a third more LD than African-Americans, highlighting the role of the population's demography in shaping the patterns of LD. Despite those differences, the long-range contour of the LD maps is remarkably similar across the four populations, presumably reflecting common localization of recombination hot spots. Our results have practical implications for the rational design and selection of SNPs for disease association studies.
引用
收藏
页码:454 / 462
页数:9
相关论文
共 50 条
[1]   Lower-than-expected linkage disequilibrium between tightly linked markers in humans suggests a role for gene conversion [J].
Ardlie, K ;
Liu-Cordero, SN ;
Eberle, MA ;
Daly, M ;
Barrett, J ;
Winchester, E ;
Lander, ES ;
Kruglyak, L .
AMERICAN JOURNAL OF HUMAN GENETICS, 2001, 69 (03) :582-589
[2]   High levels of sequence polymorphism and linkage disequilibrium at the telomere of 12q: Implications for telomere biology and human evolution [J].
Baird, DM ;
Coleman, J ;
Rosser, ZH ;
Royle, NJ .
AMERICAN JOURNAL OF HUMAN GENETICS, 2000, 66 (01) :235-250
[3]   Ethnic-difference markers for use in mapping by admixture linkage disequilibrium [J].
Collins-Schramm, HE ;
Phillips, CM ;
Operario, DJ ;
Lee, JS ;
Weber, JL ;
Hanson, RL ;
Knowler, WC ;
Cooper, R ;
Li, HZ ;
Seldin, MF .
AMERICAN JOURNAL OF HUMAN GENETICS, 2002, 70 (03) :737-750
[4]   Haplotype diversity across 100 candidate genes for inflammation, lipid metabolism, and blood pressure regulation in two populations [J].
Crawford, DC ;
Carlson, CS ;
Rieder, MJ ;
Carrington, DP ;
Yi, Q ;
Smith, JD ;
Eberle, MA ;
Kruglyak, L ;
Nickerson, DA .
AMERICAN JOURNAL OF HUMAN GENETICS, 2004, 74 (04) :610-622
[5]   High-resolution haplotype structure in the human genome [J].
Daly, MJ ;
Rioux, JD ;
Schaffner, SE ;
Hudson, TJ ;
Lander, ES .
NATURE GENETICS, 2001, 29 (02) :229-232
[6]   A first-generation linkage disequilibrium map of human chromosome 22 [J].
Dawson, E ;
Abecasis, GR ;
Bumpstead, S ;
Chen, Y ;
Hunt, S ;
Beare, DM ;
Pabial, J ;
Dibling, T ;
Tinsley, E ;
Kirby, S ;
Carter, D ;
Papaspyridonos, M ;
Livingstone, S ;
Ganske, R ;
Lohmmussaar, E ;
Zernant, J ;
Tonisson, N ;
Remm, M ;
Mägi, R ;
Puurand, T ;
Vilo, J ;
Kurg, A ;
Rice, K ;
Deloukas, P ;
Mott, R ;
Metspalu, A ;
Bentley, DR ;
Cardon, LR ;
Dunham, I .
NATURE, 2002, 418 (6897) :544-548
[7]   A SNP resource for human chromosome 22: Extracting dense clusters of SNPs from the genomic sequence [J].
Dawson, E ;
Chen, Y ;
Hunt, S ;
Smink, LJ ;
Hunt, A ;
Rice, K ;
Livingston, S ;
Bumpstead, S ;
Bruskiewich, R ;
Sham, P ;
Ganske, R ;
Adams, M ;
Kawasaki, K ;
Shimizu, N ;
Minoshima, S ;
Roe, B ;
Bentley, D ;
Dunham, I .
GENOME RESEARCH, 2001, 11 (01) :170-178
[8]  
De La Vega FM, 2002, BIOTECHNIQUES, P48
[9]   A second generation human haplotype map of over 3.1 million SNPs [J].
Frazer, Kelly A. ;
Ballinger, Dennis G. ;
Cox, David R. ;
Hinds, David A. ;
Stuve, Laura L. ;
Gibbs, Richard A. ;
Belmont, John W. ;
Boudreau, Andrew ;
Hardenbol, Paul ;
Leal, Suzanne M. ;
Pasternak, Shiran ;
Wheeler, David A. ;
Willis, Thomas D. ;
Yu, Fuli ;
Yang, Huanming ;
Zeng, Changqing ;
Gao, Yang ;
Hu, Haoran ;
Hu, Weitao ;
Li, Chaohua ;
Lin, Wei ;
Liu, Siqi ;
Pan, Hao ;
Tang, Xiaoli ;
Wang, Jian ;
Wang, Wei ;
Yu, Jun ;
Zhang, Bo ;
Zhang, Qingrun ;
Zhao, Hongbin ;
Zhao, Hui ;
Zhou, Jun ;
Gabriel, Stacey B. ;
Barry, Rachel ;
Blumenstiel, Brendan ;
Camargo, Amy ;
Defelice, Matthew ;
Faggart, Maura ;
Goyette, Mary ;
Gupta, Supriya ;
Moore, Jamie ;
Nguyen, Huy ;
Onofrio, Robert C. ;
Parkin, Melissa ;
Roy, Jessica ;
Stahl, Erich ;
Winchester, Ellen ;
Ziaugra, Liuda ;
Altshuler, David ;
Shen, Yan .
NATURE, 2007, 449 (7164) :851-U3
[10]   The structure of haplotype blocks in the human genome [J].
Gabriel, SB ;
Schaffner, SF ;
Nguyen, H ;
Moore, JM ;
Roy, J ;
Blumenstiel, B ;
Higgins, J ;
DeFelice, M ;
Lochner, A ;
Faggart, M ;
Liu-Cordero, SN ;
Rotimi, C ;
Adeyemo, A ;
Cooper, R ;
Ward, R ;
Lander, ES ;
Daly, MJ ;
Altshuler, D .
SCIENCE, 2002, 296 (5576) :2225-2229