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Empirical evidence that metabolic theory describes the temperature dependency of within-host parasite dynamics

机译:代谢理论描述宿主内寄生虫动力学的温度依赖性的经验证据

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摘要

The complexity of host–parasite interactions makes it difficult to predict how host–parasite systems will respond to climate change. In particular, host and parasite traits such as survival and virulence may have distinct temperature dependencies that must be integrated into models of disease dynamics. Using experimental data from Daphnia magna and a microsporidian parasite, we fitted a mechanistic model of the within-host parasite population dynamics. Model parameters comprising host aging and mortality, as well as parasite growth, virulence, and equilibrium abundance, were specified by relationships arising from the metabolic theory of ecology. The model effectively predicts host survival, parasite growth, and the cost of infection across temperature while using less than half the parameters compared to modeling temperatures discretely. Our results serve as a proof of concept that linking simple metabolic models with a mechanistic host–parasite framework can be used to predict temperature responses of parasite population dynamics at the within-host level.
机译:寄主-寄生虫相互作用的复杂性使得很难预测寄主-寄生虫系统将如何应对气候变化。特别是,宿主和寄生虫性状(例如生存和毒力)可能具有明显的温度依赖性,必须将其整合到疾病动力学模型中。使用来自大型蚤(Daphnia magna)和微孢子虫寄生虫的实验数据,我们拟合了宿主内部寄生虫种群动态的机制模型。模型参数包括宿主的衰老和死亡率,以及寄生虫的生长,毒力和平衡丰度,这些参数是由生态代谢理论中的关系确定的。该模型有效地预测了宿主的存活率,寄生虫的生长以及整个温度范围内的感染成本,而与离散地模拟温度相比,使用的参数不到一半。我们的研究结果证明了简单的代谢模型与机械宿主-寄生虫框架的联系可以用来预测宿主内部寄生虫种群动态的温度响应。

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