Redistribution of gene frequency and changes of genetic variation following a bottleneck in population size

被引:26
作者
Zhang, XS
Wang, JL
Hill, WG
机构
[1] Univ Edinburgh, Sch Biol Sci, Inst Cell Anim & Populat Biol, Edinburgh EH9 3JT, Midlothian, Scotland
[2] Zool Soc London, Inst Zool, London NW1 4RY, England
关键词
D O I
10.1534/genetics.103.025874
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Although the distribution of frequencies of genes influencing quantitative traits is important to our understanding of their genetic basis and their evolution, direct information from laboratory experiments is very limited. In theory, different models of selection and mutation generate different predictions of frequency distributions. When a large population at mutation-selection balance passes through a rapid bottleneck in size, the frequency distribution of genes is dramatically altered, causing changes in observable quantities such as the mean and variance of quantitative traits. We investigate the gene frequency distribution of a population at mutation-selection balance under a joint-effect model of real stabilizing and pleiotropic selection and its redistribution and thus changes of the genetic properties of metric and fitness traits after the population passes a rapid bottleneck and expands in size. If all genes that affect the trait are neutral with respect to fitness, the additive genetic variance (V-A) is always reduced by a bottleneck in population size, regardless of their degree of dominance. For genes that have been under selection, V-A increases following a bottleneck if they are (partially) recessive, while the dominance variance increases substantially for any degree of dominance. With typical estimates of mutation parameters, the joint-effect model can explain data from laboratory experiments on the effect of bottlenecking on fitness and morphological traits, providing further support for it as a plausible mechanism for maintenance of quantitative genetic variation.
引用
收藏
页码:1475 / 1492
页数:18
相关论文
共 58 条
  • [1] VARIABILITY IN GENETIC PARAMETERS AMONG SMALL POPULATIONS
    AVERY, PJ
    HILL, WG
    [J]. GENETICS RESEARCH, 1977, 29 (03) : 193 - 213
  • [2] AVERY PJ, 1979, GENETICS, V91, P817
  • [3] BARTON NH, 1990, GENETICS, V124, P773
  • [4] Understanding quantitative genetic variation
    Barton, NH
    Keightley, PD
    [J]. NATURE REVIEWS GENETICS, 2002, 3 (01) : 11 - 21
  • [5] BARTON NH, 1989, ANNU REV GENET, V23, P337, DOI 10.1146/annurev.ge.23.120189.002005
  • [6] BRYANT EH, 1986, GENETICS, V114, P1191
  • [7] CABALLERO A, 1994, GENETICS, V138, P883
  • [8] The genetic basis of inbreeding depression
    Charlesworth, B
    Charlesworth, D
    [J]. GENETICAL RESEARCH, 1999, 74 (03) : 329 - 340
  • [9] CHARLESWORTH B, 2000, EVOL GENET, P363
  • [10] The variant call format and VCFtools
    Danecek, Petr
    Auton, Adam
    Abecasis, Goncalo
    Albers, Cornelis A.
    Banks, Eric
    DePristo, Mark A.
    Handsaker, Robert E.
    Lunter, Gerton
    Marth, Gabor T.
    Sherry, Stephen T.
    McVean, Gilean
    Durbin, Richard
    [J]. BIOINFORMATICS, 2011, 27 (15) : 2156 - 2158