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首页> 外文期刊>Frontiers in Marine Science >Contrasting Controls on Microzooplankton Grazing and Viral Infection of Microbial Prey
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Contrasting Controls on Microzooplankton Grazing and Viral Infection of Microbial Prey

机译:微带藻浮游生物放牧和微生物猎物的病毒感染的对比控制。

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摘要

The encounter and capture of bacteria and phytoplankton by microbial predators and parasites is fundamental to marine ecosystem organization and activity. Here, we combined biophysical models with published laboratory measurements to infer functional traits, including encounter kernel and capture efficiency, for a wide range of marine viruses and microzooplankton grazers. Despite virus particles being orders of magnitude smaller than microzooplankton grazers, virus encounter kernels and adsorption rates were in many cases comparable in magnitude to grazer encounter kernel and clearance, pointing to Brownian motion as a highly effective method of transport for viruses. Inferred virus adsorption efficiency covered many orders of magnitude, but the median virus adsorption efficiency was between 5 to 25% depending on the assumed host swimming speed. Uncertainty on predator detection area and swimming speed prevented robust inference of grazer capture efficiency, but sensitivity analysis was used to identify bounds on unconstrained processes. These results provide a common functional trait framework for understanding marine host-virus and predator-prey interactions, and highlight the value of theory for interpreting measured life-history traits.
机译:微生物捕食者和寄生虫对细菌和浮游植物的接触和捕获是海洋生态系统组织和活动的基础。在这里,我们将生物物理模型与已发布的实验室测量结果相结合,以推断出各种海洋病毒和微带浮游生物放牧者的功能特征,包括遇到籽粒和捕获的效率。尽管病毒颗粒的大小比微浮游动物的小,但在许多情况下,病毒遇到的颗粒和吸附率在数量上与掠食者的颗粒和清除率相当,这表明布朗运动是一种高效的病毒运输方法。推断的病毒吸附效率涵盖了多个数量级,但是取决于假定的宿主游泳速度,中值病毒吸附效率在5%到25%之间。捕食者检测区域和游泳速度的不确定性无法可靠地推断出掠食者的捕获效率,但是敏感性分析用于确定不受约束的过程的界限。这些结果为理解海洋宿主病毒和捕食者-猎物的相互作用提供了一个通用的功能性状框架,并突出了该理论对解释所测得的生命历史性状的价值。

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