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THE EVOLUTION OF PHENOTYPIC PLASTICITY IN LIFE‐HISTORY TRAITS: PREDICTIONS OF REACTION NORMS FOR AGE AND SIZE AT MATURITY

Evolution · 1986 · Vol. 40(5) · pp. 893–913
Stephen C. StearnsJacob C. Koella

Abstract

We used life-history theory to predict reaction norms for age and size at maturation. We assumed that fecundity increases with size and that juvenile mortality rates of offspring decrease as ages-at-maturity of parents increase, then calculated the reaction norm by varying growth rate and calculating an optimal age at maturity for each growth rate. The reaction norm for maturation should take one of at least four shapes that depend on specific relations between changes in growth rates and changes in adult mortality rates, juvenile mortality rates, or both. Most organisms should mature neither at a fixed size nor at a fixed age, but along an age-size trajectory. The model makes possible a clear distinction between the genetic and phenotypic components of variation. The evolved response to selection is reflected in the shape and position of the reaction norm. The phenotypic response of a single organism to rapid or slow growth is defined by the location of its maturation event as a point on the reaction norm. A quantitative test with data from 19 populations and species of fish showed that predictions were in good agreement with observations (r = 0.93, P < 0.0001). The predictions of the model also agreed qualitatively with observed phenotypic variation in age and size at maturity in humans, platyfish, fruit flies, and red deer. This preliminary success suggests that experiments designed to test the predictions directly will be worthwhile.

Fish Ecology and Management StudiesGenetic and phenotypic traits in livestockGenetic diversity and population structureBiologyFecundityPhenotypic plasticityLife history theoryJuvenileLife historyLongevityEvolutionary biologyMaturity (psychological)Norm (philosophy)

Funding

  • National Science Foundation
  • Universität Basel
  • Reed College
  • National Institutes of Health
  • Division of Environmental Biology
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1,200
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References
THE GENETIC BASIS OF EVOLUTIONARY CHANGE
Evolution · 1975 · 3,553 citations
Geometry for the selfish herd
Journal of Theoretical Biology · 1971 · 3,440 citations
Genetics of the Evolutionary Process
Journal of Medical Genetics · 1971 · 1,641 citations
Life Historical Consequences of Natural Selection
The American Naturalist · 1970 · 1,659 citations
The Evolution of Life History Parameters in Teleosts
Canadian Journal of Fisheries and Aquatic Sciences · 1984 · 469 citations
Red Deer. Behavior and Ecology of Two Sexes
Journal of Animal Ecology · 1983 · 2,478 citations
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