Inferring the energy cost of resistance to parasitic infection and its link to a trade-off.

IF 2.3 Q2 ECOLOGY
Frédéric Douhard, Carole Moreno-Romieux, Andrea B Doeschl-Wilson
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Abstract

Background: In infected hosts, immune responses trigger a systemic energy reallocation away from energy storage and growth, to fuel a costly defense program. The exact energy costs of immune defense are however unknown in general. Life history theory predicts that such costs underpin trade-offs between host disease resistance and other fitness related traits, yet this has been seldom assessed. Here we investigate immune energy cost induced by infection, and their potential link to a trade-off between host resistance and fat storage that we previously exposed in sheep divergently selected for resistance to a pathogenic helminth.

Results: To this purpose, we developed a mathematical model of host-parasite interaction featuring individual changes in energy allocation over the course of infection. The model was fitted to data from an experimental infectious challenge in sheep from genetically resistant and susceptible lines to infer the magnitude of immune energy costs. A relatively small and transient immune energy cost in early infection best explained within-individual changes in growth, energy storage and parasite burden. Among individuals, predicted responses assuming this positive energy cost conformed to the observed trade-off between resistance and storage, whereas a cost-free scenario incorrectly predicted no trade-off.

Conclusions: Our mechanistic model fitting to experimental data provides novel insights into the link between energy costs and reallocation due to induced resistance within-individual, and trade-offs among individuals of selected lines. These will be useful to better understand the exact role of energy allocation in the evolution of host defenses, and for predicting the emergence of trade-offs in genetic selection.

推断抵抗寄生虫感染的能量成本及其与权衡的关系。
背景:在受感染的宿主中,免疫反应触发了系统能量的重新分配,远离能量储存和生长,为昂贵的防御程序提供燃料。然而,免疫防御的确切能量消耗通常是未知的。生活史理论预测,这些成本支撑着宿主抗病能力和其他适应性相关特征之间的权衡,但这一点很少得到评估。在这里,我们研究了感染诱导的免疫能量成本,以及它们与宿主抗性和脂肪储存之间权衡的潜在联系,我们之前在绵羊中暴露了对致病性蠕虫的不同选择抗性。为此,我们建立了一个宿主-寄生虫相互作用的数学模型,该模型在感染过程中具有能量分配的个体变化。该模型拟合了来自遗传抗性和易感品系绵羊的实验性感染挑战数据,以推断免疫能量成本的大小。早期感染中相对较小且短暂的免疫能量损失最好解释为生长、能量储存和寄生虫负担的个体变化。在个体中,假设这种正能量成本的预测反应符合观察到的抵抗和储存之间的权衡,而无成本情景错误地预测没有权衡。结论:我们的机制模型与实验数据相拟合,为能量成本与个体内部诱导抗性和选择品系个体之间的权衡之间的再分配之间的联系提供了新的见解。这些将有助于更好地理解能量分配在宿主防御进化中的确切作用,并预测遗传选择中权衡的出现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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