Shared quantitative trait loci underlying the genetic correlation between continuous traits

被引:74
作者
Gardner, Kyle M. [1 ]
Latta, Robert G. [1 ]
机构
[1] Dalhousie Univ, Dept Biol, Halifax, NS B3H 4J1, Canada
关键词
antagonistic pleiotropy; constraint; genetic correlation; linkage; trade-off; INBRED LINE POPULATION; ARABIDOPSIS-THALIANA; G-MATRIX; DROSOPHILA-MELANOGASTER; MAPPING QTLS; NONSTRESS ENVIRONMENTS; PHENOTYPIC EVOLUTION; LIFE-HISTORY; GRAIN-YIELD; MOLECULAR DISSECTION;
D O I
10.1111/j.1365-294X.2007.03499.x
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
We review genetic correlations among quantitative traits in light of their underlying quantitative trait loci (QTL). We derive an expectation of genetic correlation from the effects of underlying loci and test whether published genetic correlations can be explained by the QTL underlying the traits. While genetically correlated traits shared more QTL (33%) on average than uncorrelated traits (11%), the actual number of shared QTL shared was small. QTL usually predicted the sign of the correlation with good accuracy, but the quantitative prediction was poor. Approximately 25% of trait pairs in the data set had at least one QTL with antagonistic effects. Yet a significant minority (20%) of such trait pairs have net positive genetic correlations due to such antagonistic QTL 'hidden' within positive genetic correlations. We review the evidence on whether shared QTL represent single pleiotropic loci or closely linked monotropic genes, and argue that strict pleiotropy can be viewed as one end of a continuum of recombination rates where r = 0. QTL studies of genetic correlation will likely be insufficient to predict evolutionary trajectories over long time spans in large panmictic populations, but will provide important insights into the trade-offs involved in population and species divergence.
引用
收藏
页码:4195 / 4209
页数:15
相关论文
共 85 条
[1]   CONSTRAINTS ON PHENOTYPIC EVOLUTION [J].
ARNOLD, SJ .
AMERICAN NATURALIST, 1992, 140 :S85-S107
[2]   Detection of quantitative trait loci for grain yield and yield components in maize across generations in stress and nonstress environments [J].
Austin, DF ;
Lee, M .
CROP SCIENCE, 1998, 38 (05) :1296-1308
[3]  
Beavis William D., 1998, P145
[4]  
Bégin M, 2003, EVOLUTION, V57, P1107
[5]   Developmental constraints versus flexibility in morphological evolution [J].
Beldade, P ;
Koops, K ;
Brakefield, PM .
NATURE, 2002, 416 (6883) :844-847
[6]   Modularity, individuality, and evo-devo in butterfly wings [J].
Beldade, P ;
Koops, K ;
Brakefield, PM .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2002, 99 (22) :14262-14267
[7]   QTL mapping of fruit-related traits in pepper (Capsicum annuum) [J].
Ben Chaim, A ;
Paran, I ;
Grube, RC ;
Jahn, M ;
van Wijk, R ;
Peleman, J .
THEORETICAL AND APPLIED GENETICS, 2001, 102 (6-7) :1016-1028
[8]  
Björklund M, 2004, EVOLUTION, V58, P1157
[9]   QTL mapping in tropical maize .1. Genomic regions affecting leaf feeding resistance to sugarcane borer and other traits [J].
Bohn, M ;
Khairallah, MM ;
GonzalezdeLeon, D ;
Hoisington, DA ;
Utz, HF ;
Deutsch, JA ;
Jewell, DC ;
Mihm, JA ;
Melchinger, AE .
CROP SCIENCE, 1996, 36 (05) :1352-1361
[10]   CORRELATIONAL SELECTION FOR COLOR PATTERN AND ANTIPREDATOR BEHAVIOR IN THE GARTER SNAKE THAMNOPHIS-ORDINOIDES [J].
BRODIE, ED .
EVOLUTION, 1992, 46 (05) :1284-1298