Department of Evolutionary Studies of Biosystems, Graduate University for Advanced Studies (Sokendai), Hayama, Kanagawa, 240-0193, Japan.
Am Nat. 2011 Sep;178(3):287-304. doi: 10.1086/661241.
Ecologists have increasingly focused on how rapid adaptive trait changes can affect population dynamics. Rapid adaptation can result from either rapid evolution or phenotypic plasticity, but their effects on population dynamics are seldom compared directly. Here we examine theoretically the effects of rapid evolution and phenotypic plasticity of antipredatory defense on predator-prey dynamics. Our analyses reveal that phenotypic plasticity tends to stabilize population dynamics more strongly than rapid evolution. It is therefore important to know the mechanism by which phenotypic variation is generated for predicting the dynamics of rapidly adapting populations. We next examine an advantage of a phenotypically plastic prey genotype over the polymorphism of specialist prey genotypes. Numerical analyses reveal that the plastic genotype, if there is a small cost for maintaining it, cannot coexist with the pairs of specialist counterparts unless the system has a limit cycle. Furthermore, for the plastic genotype to replace specialist genotypes, a forced environmental fluctuation is critical in a broad parameter range. When these results are combined, the plastic genotype enjoys an advantage with population oscillations, but plasticity tends to lose its advantage by stabilizing the oscillations. This dilemma leads to an interesting intermittent limit cycle with the changing frequency of phenotypic plasticity.
生态学家越来越关注快速适应特征变化如何影响种群动态。快速适应既可以来自快速进化,也可以来自表型可塑性,但它们对种群动态的影响很少被直接比较。在这里,我们从理论上研究了捕食防御的快速进化和表型可塑性对捕食者-猎物动态的影响。我们的分析表明,表型可塑性往往比快速进化更能稳定种群动态。因此,了解产生表型变异的机制对于预测快速适应种群的动态非常重要。接下来,我们研究了表型可塑性强的猎物基因型相对于专门化猎物基因型多态性的优势。数值分析表明,如果维持这种表型可塑性的代价很小,那么这种可塑性基因型就不能与专门化的对应基因型共存,除非系统存在极限环。此外,对于这种可塑性基因型取代专门化基因型,在广泛的参数范围内,强制环境波动是至关重要的。当这些结果结合在一起时,具有种群波动的可塑性基因型具有优势,但由于其稳定性会使波动减弱,可塑性也会失去其优势。这种困境导致了一个有趣的间歇极限环,其表型可塑性的频率在不断变化。