Simulating local adaptation to climate of forest trees with a Physio-Demo-Genetics model
Authored by Sylvie Oddou-Muratorio, Hendrik Davi
Date Published: 2014
DOI: 10.1111/eva.12143
Sponsors:
French National Research Agency (ANR)
French Foundation for Research on Biodiversity (FRB)
Platforms:
No platforms listed
Model Documentation:
Other Narrative
Mathematical description
Model Code URLs:
Model code not found
Abstract
One challenge of evolutionary ecology is to predict the rate and
mechanisms of population adaptation to environmental variations. The
variations in most life history traits are shaped both by individual
genotypic and by environmental variation. Forest trees exhibit high
levels of genetic diversity, large population sizes, and gene flow, and
they also show a high level of plasticity for life history traits. We
developed a new Physio-Demo-Genetics model (denoted PDG) coupling (i) a
physiological module simulating individual tree responses to the
environment; (ii) a demographic module simulating tree survival, reproduction, and pollen and seed dispersal; and (iii) a quantitative
genetics module controlling the heritability of key life history traits.
We used this model to investigate the plastic and genetic components of
the variations in the timing of budburst (TBB) along an elevational
gradient of Fagus sylvatica (the European beech). We used a repeated
5years climatic sequence to show that five generations of natural
selection were sufficient to develop nonmonotonic genetic
differentiation in the TBB along the local climatic gradient but also
that plastic variation among different elevations and years was higher
than genetic variation. PDG complements theoretical models and provides
testable predictions to understand the adaptive potential of tree
populations.
Tags
phenotypic plasticity
growth
Variability
Responses
Quantitative trait loci
Fagus-sylvatica l.
Carbon allocation
Water cycles
Beech
Phenology