Rapid and unpredictable changes of the G-matrix in a natural bird population over 25 years

被引:47
作者
Bjorklund, M. [1 ]
Husby, A. [1 ]
Gustafsson, L. [1 ]
机构
[1] Uppsala Univ, Dept Anim Ecol, Evolutionary Biol Ctr, SE-75236 Uppsala, Sweden
基金
瑞典研究理事会;
关键词
animal model; evolvability; genetic variance-covariance matrix; natural population; temporal stability; QUANTITATIVE GENETIC-VARIATION; STABILIZING SELECTION; BODY-SIZE; COVARIANCE; EVOLUTION; VARIANCE; PATTERNS; CONSTRAINT; MUTATION; TRAITS;
D O I
10.1111/jeb.12044
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Knowledge of the genetic variances and covariances of traits (the G-matrix) is fundamental for the understanding of evolutionary dynamics of populations. Despite its essential importance in evolutionary studies, empirical tests of the temporal stability of the G-matrix in natural populations are few. We used a 25-year-long individual-based field study on almost 7000 breeding attempts of the collared flycatcher (Ficedula albicollis) to estimate the stability of the G-matrix over time. Using animal models to estimate G for several time periods, we show that the structure of the time-specific G-matrices changed significantly over time. The temporal changes in the G-matrix were unpredictable, and the structure at one time period was not indicative of the structure at the next time period. Moreover, we show that the changes in the time-specific G-matrices were not related to changes in mean trait values or due to genetic drift. Selection, differences in acquisition/allocation patterns or environment-dependent allelic effects are therefore likely explanations for the patterns observed, probably in combination. Our result cautions against assuming constancy of the G-matrix and indicates that even short-term evolutionary predictions in natural populations can be very challenging.
引用
收藏
页码:1 / 13
页数:13
相关论文
共 66 条
[11]  
Bulmer M.G., 1980, The mathematical theory of quantitative genetics
[12]   Population differentiation in G matrix structure due to natural selection in Rana temporaria [J].
Cano, JM ;
Laurila, A ;
Palo, J ;
Merilä, J .
EVOLUTION, 2004, 58 (09) :2013-2020
[13]  
Caruso CM, 2005, EVOLUTION, V59, P826
[14]   How do misassigned paternities affect the estimation of heritability in the wild? [J].
Charmantier, A ;
Réale, D .
MOLECULAR ECOLOGY, 2005, 14 (09) :2839-2850
[15]   Comparing covariance matrices: Random skewers method compared to the common principal components model [J].
Cheverud, James M. ;
Marroig, Gabriel .
GENETICS AND MOLECULAR BIOLOGY, 2007, 30 (02) :461-469
[16]   Individuals and populations: the role of long-term, individual-based studies of animals in ecology and evolutionary biology [J].
Clutton-Brock, Tim ;
Sheldon, Ben C. .
TRENDS IN ECOLOGY & EVOLUTION, 2010, 25 (10) :562-573
[17]   The statistical mechanics of a polygenic character under stabilizing selection, mutation and drift [J].
de Vladar, Harold P. ;
Barton, Nick H. .
JOURNAL OF THE ROYAL SOCIETY INTERFACE, 2011, 8 (58) :720-739
[18]   ACQUISITION AND ALLOCATION OF RESOURCES - GENETIC (CO)VARIANCES, SELECTION, AND LIFE HISTORIES [J].
DEJONG, G ;
VANNOORDWIJK, AJ .
AMERICAN NATURALIST, 1992, 139 (04) :749-770
[19]   Rapid divergence of genetic variance-covariance matrix within a natural population [J].
Doroszuk, Agnieszka ;
Wojewodzic, Marcin W. ;
Gort, Gerrit ;
Kammenga, Jan E. .
AMERICAN NATURALIST, 2008, 171 (03) :291-304
[20]   How do genetic correlations affect species range shifts in a changing environment? [J].
Duputie, Anne ;
Massol, Francois ;
Chuine, Isabelle ;
Kirkpatrick, Mark ;
Ronce, Ophelie .
ECOLOGY LETTERS, 2012, 15 (03) :251-259