A genomewide linkage scan for quantitative-trait loci for obesity phenotypes

被引:142
|
作者
Deng, HW
Deng, HY
Liu, YJ
Liu, YZ
Xu, FH
Shen, H
Conway, T
Li, JL
Huang, QY
Davies, KM
Recker, RR
机构
[1] Creighton Univ, Osteoporosis Res Ctr, Omaha, NE 68131 USA
[2] Creighton Univ, Dept Biomed Sci, Omaha, NE 68131 USA
[3] Hunan Normal Univ, Coll Life Sci, Lab Mol & Stat Genet, Changsha, Peoples R China
关键词
D O I
10.1086/339934
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Obesity is an increasingly serious health problem in the world. Body mass index (BMI), percentage fat mass, and body fat mass are important indices of obesity. For a sample of pedigrees that contains >10,000 relative pairs (including 1,249 sib pairs) that are useful for linkage analyses, we performed a whole-genome linkage scan, using 380 microsatellite markers to identify genomic regions that may contain quantitative-trait loci (QTLs) for obesity. Each pedigree was ascertained through a proband who has extremely low bone mass, which translates into a low BMI. A major QTL for BMI was identified on 2q14 near the marker D2S347 with a LOD score of 4.04 in two-point analysis and a maximum LOD score (MLS) of 4.44 in multipoint analysis. The genomic region near 2q14 also achieved an MLS >2.0 for percentage of fat mass and body fat mass. For the putative QTL on 2q14, as much as 28.2% of BMI variation (after adjustment for age and sex) may be attributable to this locus. In addition, several other genomic regions that may contain obesity-related QTLs are suggested. For example, 1p36 near the marker D1S468 may contain a QTL for BMI variation, with a LOD score of 2.75 in two-point analysis and an MLS of 2.09 in multipoint analysis. The genomic regions identified in this and earlier reports are compared for further exploration in extension studies that use larger samples and/or denser markers for confirmation and fine-mapping studies, to eventually identify major functional genes involved in obesity.
引用
收藏
页码:1138 / 1151
页数:14
相关论文
共 50 条
  • [31] Exact multipoint quantitative-trait linkage analysis in pedigrees by variance components
    Pratt, SC
    Daly, MJ
    Kruglyak, L
    [J]. AMERICAN JOURNAL OF HUMAN GENETICS, 2000, 66 (03) : 1153 - 1157
  • [32] Quantitative-trait loci analysis of cocaine-related behaviours and neurochemistry
    Jones, BC
    Tarantino, LM
    Rodriguez, LA
    Reed, CL
    McClearn, GE
    Plomin, R
    Erwin, VG
    [J]. PHARMACOGENETICS, 1999, 9 (05): : 607 - 617
  • [33] SEGREGATION AND LINKAGE ANALYSIS OF SERUM ANGIOTENSIN-I-CONVERTING ENZYME LEVELS - EVIDENCE FOR 2 QUANTITATIVE-TRAIT LOCI
    MCKENZIE, CA
    JULIER, C
    FORRESTER, T
    MCFARLANEANDERSON, N
    KEAVNEY, B
    LATHROP, GM
    RATCLIFFE, PJ
    FARRALL, M
    [J]. AMERICAN JOURNAL OF HUMAN GENETICS, 1995, 57 (06) : 1426 - 1435
  • [34] Detection of linkage for quantitative trait loci.
    Siegmund, DO
    Tang, HK
    [J]. AMERICAN JOURNAL OF HUMAN GENETICS, 1999, 65 (04) : A446 - A446
  • [35] Genomewide scan for linkage reveals evidence of several susceptibility loci for alopecia areata
    Martinez-Mir, Amalia
    Zlotogorski, Abraham
    Gordon, Derek
    Petukhova, Lynn
    Mo, Jianhong
    Gilliam, T. Conrad
    Londono, Douglas
    Haynes, Chad
    Ott, Jurg
    Hordinsky, Maria
    Nanova, Krassimira
    Norris, David
    Price, Vera
    Duvic, Madeleine
    Christiano, Angela M.
    [J]. AMERICAN JOURNAL OF HUMAN GENETICS, 2007, 80 (02) : 316 - 328
  • [36] Genomewide scan for linkage reveals evidence of several susceptibility loci for Alopecia Areata
    Petukhova, L.
    Zlotogorski, A.
    Martinez-Mir, A.
    Gordon, D.
    Mo, J.
    Gilliam, T.
    Londono, D.
    Haynes, C.
    Ott, J.
    Hordinsky, M.
    Nanova, K.
    Norris, D.
    Price, V.
    Duvic, M.
    Christiano, A. M.
    [J]. JOURNAL OF INVESTIGATIVE DERMATOLOGY, 2007, 127 : S89 - S89
  • [37] Bayesian mapping of genomewide interacting quantitative trait loci for ordinal traits
    Yi, Nengjun
    Banerjee, Samprit
    Pomp, Daniel
    Yandell, Brian S.
    [J]. GENETICS, 2007, 176 (03) : 1855 - 1864
  • [38] Powerful regression-based quantitative-trait linkage analysis of general pedigrees
    Sham, PC
    Purcell, S
    Cherny, SS
    Abecasis, GR
    [J]. AMERICAN JOURNAL OF HUMAN GENETICS, 2002, 71 (02) : 238 - 253
  • [39] Classical meta-analysis applied to quantitative trait locus mapping - Genomewide linkage scan for height in the GenomEUtwin project
    Lebrec, JJ
    Putter, H
    van Houwelingen, HC
    [J]. GENETIC EPIDEMIOLOGY, 2005, 29 (03) : 260 - 261
  • [40] A linkage strategy for detection of human quantitative-trait loci .1. Generalized relative risk ratios and power of sib pairs with extreme trait values
    Gu, C
    Rao, DC
    [J]. AMERICAN JOURNAL OF HUMAN GENETICS, 1997, 61 (01) : 200 - 210