Simulating plasticity as a framework for understanding habitat selection and its role in adaptive capacity and extinction risk through an expansion of CDMetaPOP

IF 5.5 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Travis Seaborn, Erin L. Landguth, Christopher C. Caudill
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引用次数: 0

Abstract

Adaptive capacity can present challenges for modelling as it encompasses multiple ecological and evolutionary processes such as natural selection, genetic drift, gene flow and phenotypic plasticity. Spatially explicit, individual-based models provide an outlet for simulating these complex interacting eco-evolutionary processes. We expanded the existing Cost-Distance Meta-POPulation (CDMetaPOP) framework with inducible plasticity modelled as a habitat selection behaviour, using temperature or habitat quality variables, with a genetically based selection threshold conditioned on past individual experience. To demonstrate expected results in the new module, we simulated hypothetical populations and then evaluated model performance in populations of redband trout (Oncorhynchus mykiss gairdneri) across three watersheds where temperatures induce physiological stress in parts of the stream network. We ran simulations using projected warming stream temperature data under four scenarios for alleles that: (1) confer thermal tolerance, (2) bestow plastic habitat selection, (3) give both thermal tolerance and habitat selection preference and (4) do not provide either thermal tolerance or habitat selection. Inclusion of an adaptive allele decreased declines in population sizes, but this impact was greatly reduced in the relatively cool stream networks. As anticipated with the new module, high-temperature patches remained unoccupied by individuals with the allele operating plastically after exposure to warm temperatures. Using complete habitat avoidance above the stressful temperature threshold, habitat selection reduced the overall population size due to the opportunity cost of avoiding areas with increased, but not guaranteed, mortality. Inclusion of plasticity within CDMetaPOP will provide the potential for genetic or plastic traits and ‘rescue’ to affect eco-evolutionary dynamics for research questions and conservation applications.

通过扩展CDMetaPOP,模拟可塑性作为理解生境选择及其在适应能力和灭绝风险中的作用的框架
适应能力可以为建模带来挑战,因为它包含多种生态和进化过程,如自然选择、遗传漂变、基因流动和表型可塑性。空间明确的、基于个体的模型为模拟这些复杂的相互作用的生态进化过程提供了一个出口。我们扩展了现有的成本-距离元种群(CDMetaPOP)框架,将诱导可塑性建模为栖息地选择行为,使用温度或栖息地质量变量,以及基于过去个体经验的遗传选择阈值。为了证明新模块的预期结果,我们模拟了假设的种群,然后评估了模型在红带鳟鱼(Oncorhynchus mykiss gairdneri)种群中的表现,这些种群跨越了三个流域,在这些流域,温度会引起部分溪流网络的生理压力。我们利用预估的变暖流温度数据在四种情况下对等位基因进行了模拟:(1)赋予热耐受性,(2)赋予塑料栖息地选择,(3)同时赋予热耐受性和栖息地选择偏好,以及(4)既不提供热耐受性也不提供栖息地选择。适应性等位基因的加入减少了种群规模的下降,但这种影响在相对较冷的河流网络中大大减少。正如新模块所预期的那样,高温斑块仍然没有被暴露在温暖温度下具有可塑性的等位基因的个体占据。使用高于压力温度阈值的完全栖息地回避,由于避开死亡率增加但不保证死亡率的区域的机会成本,栖息地选择减少了总体种群规模。在CDMetaPOP中纳入可塑性将为遗传或可塑性特征和“拯救”提供潜力,从而影响研究问题和保护应用的生态进化动力学。
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来源期刊
Molecular Ecology Resources
Molecular Ecology Resources 生物-进化生物学
CiteScore
15.60
自引率
5.20%
发文量
170
审稿时长
3 months
期刊介绍: Molecular Ecology Resources promotes the creation of comprehensive resources for the scientific community, encompassing computer programs, statistical and molecular advancements, and a diverse array of molecular tools. Serving as a conduit for disseminating these resources, the journal targets a broad audience of researchers in the fields of evolution, ecology, and conservation. Articles in Molecular Ecology Resources are crafted to support investigations tackling significant questions within these disciplines. In addition to original resource articles, Molecular Ecology Resources features Reviews, Opinions, and Comments relevant to the field. The journal also periodically releases Special Issues focusing on resource development within specific areas.
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