A strategy for the integration of QTL, gene expression, and sequence analyses

被引:59
作者
Hitzemann, R
Malmanger, B
Reed, C
Lawler, M
Hitzemann, B
Coulombe, S
Buck, K
Rademacher, B
Walter, N
Polyakov, Y
Sikela, J
Gensler, B
Burgers, S
Williams, RW
Manly, K
Flint, J
Talbot, C
机构
[1] Oregon Hlth & Sci Univ, Dept Behav Neurosci L470, Portland, OR 97239 USA
[2] Vet Affairs Med Ctr, Res Serv, Portland, OR USA
[3] Univ Colorado, Hlth Sci Ctr, Dept Pharmacol, Denver, CO 80262 USA
[4] Univ Tennessee, Ctr Hlth Sci, Ctr Genom & Bioinformat, Memphis, TN 38163 USA
[5] Roswell Pk Canc Inst, Buffalo, NY USA
[6] Wellcome Trust Ctr Human Genet, Oxford OX3 7BN, England
[7] Univ Leicester, Dept Genet, Leicester LE1 7RH, Leics, England
关键词
D O I
10.1007/s00335-003-2277-9
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
Although hundreds if not thousands of quantitative trait loci (QTL) have been described for a wide variety of complex traits, only a very small number of these QTLs have been reduced to quantitative trait genes (QTGs) and quantitative trait nucleotides (QTNs). A strategy, Multiple Cross Mapping (MCM), is described for detecting QTGs and QTNs that is based on leveraging the information contained within the haplotype structure of the mouse genome. As described in the current report, the strategy utilizes the six F-2 intercrosses that can be formed from the C57BL/6J (B6), DBA/2J (D2), BALB/cJ (C), and LP/J (LP) inbred mouse strains. Focusing on the phenotype of basal locomotor activity, it was found that in all three B6 intercrosses, a QTL was detected on distal Chromosome (Chr) 1; no QTL was detected in the other three intercrosses, and thus, it was assumed that at the QTL, the C, D2, and LP strains had functionally identical alleles. These intercross data were used to form a simple algorithm for interrogating microsatellite, single nucleotide polymorphism (SNP), brain gene expression, and sequence databases. The results obtained point to Kcnj9 (which has a markedly lower expression in the B6 strain) as being the likely QTG. Further, it is suggested that the lower expression in the B6 strain results from a polymorphism in the 5'-UTR that disrupts the binding of at least three transcription factors. Overall, the method described should be widely applicable to the analysis of QTLs.
引用
收藏
页码:733 / 747
页数:15
相关论文
共 44 条
  • [1] Identification of Cd36 (Fat) as an insulin-resistance gene causing defective fatty acid and glucose metabolism in hypertensive rats
    Aitman, TJ
    Glazier, AM
    Wallace, CA
    Cooper, LD
    Norsworthy, PJ
    Wahid, FN
    Al-Majali, KM
    Trembling, PM
    Mann, CJ
    Shoulders, CC
    Graf, D
    St Lezin, E
    Kurtz, TW
    Kren, V
    Pravenec, M
    Ibrahimi, A
    Abumrad, NA
    Stanton, LW
    Scott, J
    [J]. NATURE GENETICS, 1999, 21 (01) : 76 - 83
  • [2] Type I and Type II error rates for quantitative trait loci (QTL) mapping studies using recombinant inbred mouse strains
    Belknap, JK
    Mitchell, SR
    OToole, LA
    Helms, ML
    Crabbe, JC
    [J]. BEHAVIOR GENETICS, 1996, 26 (02) : 149 - 160
  • [3] QTL analysis and genomewide mutagenesis in mice: Complementary genetic approaches to the dissection of complex traits - Commentary
    Belknap, JK
    Hitzemann, R
    Crabbe, JC
    Phillips, TJ
    Buck, KJ
    Williams, RW
    [J]. BEHAVIOR GENETICS, 2001, 31 (01) : 5 - 15
  • [4] Chipping away at complex behavior: Transcriptome/phenotype correlations in the mouse brain
    Carter, TA
    Del Rio, JA
    Greenhall, JA
    Latronica, ML
    Lockhart, DJ
    Barlow, C
    [J]. PHYSIOLOGY & BEHAVIOR, 2001, 73 (05) : 849 - 857
  • [5] Chesler EJ, 2001, SCIENCE, V294
  • [6] CHURCHILL GA, 1994, GENETICS, V138, P963
  • [7] Cd36 and molecular mechanisms of insulin resistance in the stroke-prone spontaneously hypertensive rat
    Collison, M
    Glazier, AM
    Graham, D
    Morton, JJ
    Dominiczak, MH
    Aitman, TJ
    Connell, JMC
    Gould, GW
    Dominiczak, AF
    [J]. DIABETES, 2000, 49 (12) : 2222 - 2226
  • [8] Identifying genes for alcohol and drug sensitivity: recent progress and future directions
    Crabbe, JC
    Phillips, TJ
    Buck, KJ
    Cunningham, CL
    Belknap, JK
    [J]. TRENDS IN NEUROSCIENCES, 1999, 22 (04) : 173 - 179
  • [9] Experimental strategies for the genetic dissection of complex traits in animal models
    Darvasi, A
    [J]. NATURE GENETICS, 1998, 18 (01) : 19 - 24
  • [10] Further characterization and high-resolution mapping of quantitative trait loci for ethanol-induced locomotor activity
    Demarest, K
    Koyner, J
    McCaughran, J
    Cipp, L
    Hitzemann, R
    [J]. BEHAVIOR GENETICS, 2001, 31 (01) : 79 - 91