Flowering time plasticity in Arabidopsis thaliana:: a reanalysis of Westerman & Lawrence (1970)

被引:60
作者
Stinchcombe, JR [1 ]
Dorn, LA [1 ]
Schmitt, J [1 ]
机构
[1] Brown Univ, Dept Ecol & Evolutionary Biol, Providence, RI 02912 USA
关键词
adaptive plasticity; Arabidopsis thaliana; cost of plasticity; flowering time; genetic correlation; genotypic selection; phenotypic plasticity; reaction norm; selection gradients;
D O I
10.1046/j.1420-9101.2003.00641.x
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Environmental variation in temperature can have dramatic effects on plant morphology, phenology, and fitness, and for this reason it is important to understand the evolutionary dynamics of phenotypic plasticity in response to temperature. We investigated constraints on the evolution of phenotypic plasticity in response to a temperature gradient in the model plant Arabidopsis thaliana by applying modern analytical tools to the classic data of Westerman & Lawrence (1970). We found significant evidence for two types of constraints. First, we detected numerous significant genetic correlations between plastic responses to temperature and the mean value of a trait across all environments, which differed qualitatively in pattern between the set of ecotypes and the set of mutant lines in the original sample. Secondly, we detected significant costs of flowering time plasticity in two of the three experimental environments, and a net pattern of selection against flowering time plasticity in the experiment overall. Thus, when explored with contemporary methods, the prescient work of Westerman & Lawrence (1970) provides new insights about evolutionary constraints on the evolution of plasticity.
引用
收藏
页码:197 / 207
页数:11
相关论文
共 73 条
[1]   An ecological cost of plant defence: attractiveness of bitter cucumber plants to natural enemies of herbivores [J].
Agrawal, AA ;
Janssen, A ;
Bruin, J ;
Posthumus, MA ;
Sabelis, MW .
ECOLOGY LETTERS, 2002, 5 (03) :377-385
[2]   A model for optimal reaction norms: The case of the pregnant garter snake and her temperature-sensitive embryos [J].
Arnold, SJ ;
Peterson, CR .
AMERICAN NATURALIST, 2002, 160 (03) :306-316
[3]   A thermosensory pathway controlling flowering time in Arabidopsis thaliana [J].
Blázquez, MA ;
Ahn, JH ;
Weigel, D .
NATURE GENETICS, 2003, 33 (02) :168-171
[4]  
BRADSHAW A. D., 1965, ADVANCE GENET, V13, P115, DOI 10.1016/S0065-2660(08)60048-6
[5]  
Camara MD, 1999, EVOLUTION, V53, P1692, DOI [10.2307/2640432, 10.1111/j.1558-5646.1999.tb04554.x]
[6]   Adaptive plasticity in amphibian metamorphosis:: Response of Scaphiopus hammondii tadpoles to habitat desiccation [J].
Denver, RJ ;
Mirhadi, N ;
Phillips, M .
ECOLOGY, 1998, 79 (06) :1859-1872
[7]   Costs and limits of phenotypic plasticity [J].
DeWitt, TJ ;
Sih, A ;
Wilson, DS .
TRENDS IN ECOLOGY & EVOLUTION, 1998, 13 (02) :77-81
[8]   Costs and limits of phenotypic plasticity: Tests with predator-induced morphology and life history in a freshwater snail [J].
DeWitt, TJ .
JOURNAL OF EVOLUTIONARY BIOLOGY, 1998, 11 (04) :465-480
[9]  
Donohue K, 2000, EVOLUTION, V54, P1969, DOI 10.1111/j.0014-3820.2000.tb01241.x
[10]  
Donohue K, 2001, EVOLUTION, V55, P692, DOI 10.1554/0014-3820(2001)055[0692:ADIPIN]2.0.CO