Data from: Whether larval amphibians school does not affect the parasite aggregation rule: testing the effects of host spatial heterogeneity in field and experimental studies
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Almost all macroparasites show over-dispersed infections within natural host populations such that most parasites are distributed among a few heavily-infected individuals. Despite the importance of parasite aggregation for understanding system stability, the potential for population regulation, and super-spreading events, many questions persist about its underlying drivers. Theoretically, aggregation results from heterogeneity in host exposure, resistance, and tolerance. However, few studies have examined how host spatial arrangement – which likely affects both parasite encounter and density-dependent interactions – influences infection and dispersion, representing a critical gap in our current knowledge regarding the possible drivers of parasite aggregation. Using field data from over 165 ponds and 8,000 hosts, we evaluated how the spatial clustering of amphibian larvae within ponds 1) varied among different amphibian species, and 2), affected the distribution of parasites within the host population using Taylor’s Power Law. A complementary mesocosm experiment used field-guided manipulations of the spatial arrangement of larval amphibians to create a gradient in host clustering while controlling host density, thereby testing for spatial effects on both infection success and aggregation by three different trematode species. Our field data indicated that larval amphibians exhibited significant spatial clustering that was well captured by Taylor’s Power Law (R2 0.92 to 0.97 for different host species), but the residual variation only weakly correlated with observed patterns of trematode parasite over-dispersion. Correspondingly, experimental manipulation of host clustering had no effects on parasite infection success or the degree of parasite aggregation among cages or mesocosms. Given the importance of parasite over-dispersion for host populations and disease dynamics, we advocate for further investigations of host and parasite spatial aggregation, particularly studies that incorporate and/or control for heterogeneity in exposure and susceptibility.
几乎所有大型寄生虫在自然宿主种群中均呈现过离散感染模式,即绝大多数寄生虫仅分布于少数重度感染宿主个体之中。尽管寄生虫聚集现象对于理解生态系统稳定性、种群调控潜力以及超级传播事件均具有重要意义,但目前学界对其背后的驱动机制仍存在诸多未解之谜。理论上,宿主在病原体接触、免疫抗性与耐受能力方面的异质性是导致寄生虫聚集的成因。然而,鲜有研究探讨宿主空间分布格局——其大概率会同时影响寄生虫的宿主接触概率与密度依赖性相互作用——如何作用于宿主感染情况与寄生虫分布离散度,这也是当前关于寄生虫聚集驱动机制研究中存在的关键空白。本研究依托来自165余个池塘与8000余只宿主的野外调查数据,运用泰勒幂法则(Taylor’s Power Law)分析了池塘内两栖类幼体的空间聚集模式:其一,不同两栖类物种的幼体空间聚集程度存在何种差异;其二,该空间聚集模式如何影响宿主种群内的寄生虫分布格局。本研究辅以中型实验生态系实验,通过基于野外场景的两栖类幼体空间排布操控,在控制宿主密度的前提下构建了宿主聚集程度的梯度,以此检验空间因素对三种不同吸虫的感染成功率以及寄生虫聚集程度的影响。野外调查数据显示,两栖类幼体存在显著的空间聚集模式,且该模式可通过泰勒幂法则得到良好拟合(不同宿主物种的决定系数R²介于0.92至0.97之间),但模型残差与观测到的吸虫过离散分布模式仅存在微弱相关性。相应地,在实验笼与中型生态系中,操控宿主聚集程度并未对寄生虫感染成功率以及种群内寄生虫聚集程度产生显著影响。鉴于寄生虫过离散现象对于宿主种群与疾病传播动态的重要意义,本研究呼吁学界进一步开展宿主与寄生虫空间聚集相关研究,尤其是纳入并控制宿主接触概率与易感性异质性的相关研究。



