Dayan David I, Crawford Douglas L, Oleksiak Marjorie F
Marine Biology and Fisheries, Rosenstiel School of Marine and Atmospheric Sciences, University of Miami, 4600 Rickenbacker Causeway, Miami, FL, 33149, USA.
Mol Ecol. 2015 Jul;24(13):3345-59. doi: 10.1111/mec.13188. Epub 2015 May 27.
We examine the interaction between phenotypic plasticity and evolutionary adaptation using muscle gene expression levels among populations of the fish Fundulus heteroclitus acclimated to three temperatures. Our analysis reveals shared patterns of phenotypic plasticity due to thermal acclimation as well as non-neutral patterns of variation among populations adapted to different thermal environments. For the majority of significant differences in gene expression levels, phenotypic plasticity and adaptation operate on different suites of genes. The subset of genes that demonstrate both adaptive differences and phenotypic plasticity, however, exhibit countergradient variation of expression. Thus, expression differences among populations counteract environmental effects, reducing the phenotypic differentiation between populations. Finally, gene-by-environment interactions among genes with non-neutral patterns of expression suggest that the penetrance of adaptive variation depends on the environmental conditions experienced by the individual.
我们利用适应三种温度的底鳉种群间的肌肉基因表达水平,研究表型可塑性与进化适应之间的相互作用。我们的分析揭示了热驯化导致的表型可塑性的共同模式,以及适应不同热环境的种群间的非中性变异模式。对于基因表达水平的大多数显著差异,表型可塑性和适应性作用于不同的基因组合。然而,那些既表现出适应性差异又具有表型可塑性的基因子集,呈现出表达的反梯度变化。因此,种群间的表达差异抵消了环境影响,减少了种群间的表型分化。最后,具有非中性表达模式的基因之间的基因-环境相互作用表明,适应性变异的外显率取决于个体所经历的环境条件。