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A Data-Validated Host-Parasite Model for Infectious Disease Outbreaks

机译:传染病暴发的数据验证的宿主-寄生虫模型

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The use of model experimental systems and mathematical models is important to further understanding of infectious disease dynamics and strategize disease mitigation. Gyrodactylids are helminth ectoparasites of teleost fish which have many dynamical characteristics of microparasites but offer the advantage that they can be quantified and tracked over time, allowing further insight into within-host and epidemic dynamics. In this paper, we design a model to describe host-parasite dynamics of the well-studied guppy-Gyrodactylus turnbulli system, using experimental data to estimate parameters and validate it. We estimate the basic reproduction number (R_0), for this system. Sensitivity analysis reveals that parasite growth rate, and the rate at which the guppy mounts an immune response have the greatest impact on outbreak peak and timing both for initial outbreaks and on longer time scales. These findings highlight guppy population resistance and parasite virulence as key factors in disease control, and future work should focus on incorporating heterogeneity in host resistance into disease models and extrapolating to other host-parasite systems.
机译:模型实验系统和数学模型的使用对于进一步了解传染病动态和制定缓解疾病的战略很重要。绞线虫是硬骨鱼的蠕虫外寄生虫,具有许多微寄生虫的动态特征,但具有可以随时间量化和跟踪的优点,从而可以进一步了解宿主内部和流行病的动态。在本文中,我们设计了一个模型,该模型描述了经过充分研究的孔雀鱼-Gyrodactylus turnbulli系统的宿主-寄生虫动力学,并使用实验数据来估计参数并对其进行验证。我们估计该系统的基本再现数(R_0)。敏感性分析显示,寄生虫的生长速度以及孔雀鱼激发免疫反应的速度对爆发高峰和初始爆发时间以及更长的时间尺度具有最大的影响。这些发现强调了孔雀鱼种群的抗药性和寄生虫毒力是疾病控制的关键因素,未来的工作应集中在将宿主抗药性的异质性纳入疾病模型并外推到其他宿主-寄生虫系统中。

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