Bayesian mapping of QTL in outbred F2 families allowing inference about whether F0 grandparents are homozygous or heterozygous at QTL

被引:0
|
作者
T Hayashi
T Awata
机构
[1] Laboratory of Animal Genome,
[2] National Institute of Agrobiological Sciences,undefined
来源
Heredity | 2005年 / 94卷
关键词
Bayesian method; MCMC; QTL analysis; outbred population; F2 family;
D O I
暂无
中图分类号
学科分类号
摘要
In this paper, we propose a new Bayesian method for QTL analysis in outbred F2 families based on Markov chain Monte Carlo (MCMC) estimation allowing inference about whether each of F0 founders (grandparents) is homozygous or heterozygous at QTL. This, in turn, allows us to select a model accurately explaining observations of phenotypes for F2 individuals. The proposed method performs the fitting a statistical model of the two possible QTL states in each F0 grandparent, that is, homozygous and heterozygous at QTL, and gives a posterior distribution for the QTL states in each F0 grandparent. We confine ourselves to the discrimination of two QTL states, homozygous or heterozygous, for each of the F0 grandparents without taking into consideration whether common alleles are shared by F0 grandparents. The statistical model includes allelic effects and dominance effects for each QTL. The number of parameters representing allelic effects and dominance effects is therefore changed depending on the QTL states. A Reversible Jump MCMC technique is used for transition between the models of different dimensions. The effectiveness of the proposed method was investigated using simulation experiments. It was practicable to estimate the QTL states of F0 grandparents as well as the number, the locations and the effects of QTL segregating in an outbred F2 family.
引用
收藏
页码:326 / 337
页数:11
相关论文
共 50 条
  • [1] Bayesian mapping of QTL in outbred F2 families allowing inference about whether F0 grandparents are homozygous or heterozygous at QTL
    Hayashi, T
    Awata, T
    HEREDITY, 2005, 94 (03) : 326 - 337
  • [3] Status of genome and QTL mapping in pigs -: Data of Hohenheim F2 families
    Geldermann, H
    Moser, G
    Müller, E
    Beeckmann, P
    Yue, GH
    Dragos, M
    Bartenschlager, H
    Cepica, S
    Stratil, A
    Schröffel, J
    ARCHIV FUR TIERZUCHT-ARCHIVES OF ANIMAL BREEDING, 1999, 42 (01): : 67 - 81
  • [4] Glueballs of the f0 and f2 families, observed in processes with Pseudoscalar mesons
    Surovtsev Yu.S.
    Bulletin of the Russian Academy of Sciences: Physics, 2008, 72 (6) : 832 - 836
  • [5] Utilization of F1 information in estimating QTL effects in F2 crosses between outbred lines
    Daley, J. W.
    Shepherd, R. K.
    JOURNAL OF ANIMAL BREEDING AND GENETICS, 2008, 125 (01) : 35 - 44
  • [6] Evaluation of reciprocal cross design on detection and characterization of Mendelian QTL in F2 outbred populations
    Lee, Yun-Mi
    Kim, Eun-Hee
    Kim, Jong-Joo
    ASIAN-AUSTRALASIAN JOURNAL OF ANIMAL SCIENCES, 2007, 20 (11): : 1625 - 1630
  • [7] Mapping QTL for important seed traits in an interspecific F2 population of pigeonpea
    Abhishek Bohra
    Rintu Jha
    Amrit Lamichaney
    Deepak Singh
    Uday C. Jha
    S. J. Satheesh Naik
    Dibendu Datta
    Alok K. Maurya
    Abha Tiwari
    Vivekanand Yadav
    Farindra Singh
    Indra P. Singh
    Narendra P. Singh
    3 Biotech, 2020, 10
  • [8] Effects of missing marker and segregation distortion on QTL mapping in F2 populations
    Zhang, Luyan
    Wang, Shiquan
    Li, Huihui
    Deng, Qiming
    Zheng, Aiping
    Li, Shuangcheng
    Li, Ping
    Li, Zhonglai
    Wang, Jiankang
    THEORETICAL AND APPLIED GENETICS, 2010, 121 (06) : 1071 - 1082
  • [9] QTL mapping for test weight by using F2:3 population in maize
    JUN-QIANG DING
    JIN-LIANG MA
    CHUN-RONG ZHANG
    HUA-FANG DONG
    ZHANG-YING XI
    ZONG-LIANG XIA
    JIAN-YU WU
    Journal of Genetics, 2011, 90 : 75 - 80
  • [10] Effects of missing marker and segregation distortion on QTL mapping in F2 populations
    Luyan Zhang
    Shiquan Wang
    Huihui Li
    Qiming Deng
    Aiping Zheng
    Shuangcheng Li
    Ping Li
    Zhonglai Li
    Jiankang Wang
    Theoretical and Applied Genetics, 2010, 121 : 1071 - 1082