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The influence of changes in predation rates on marine microbial predator/prey interactions: a modelling study

机译:捕食率变化对海洋微生物捕食者/猎物相互作用的影响:模型研究

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A mathematical model was developed to represent the dynamics of predation and assimilation of ingested material by heterotrophic marine micro-zooplankton. Predation rate was made a rectangular hyperbolic function of prey carbon (C) concentration modified to simulate the prey selectivity that these organisms have been observed experimentally to exhibit in response to prey nutritional quality. We chose prey N:C ratio as an index of selectivity and related both the maximum predation rate (PM) and the assimilation efficiency (AE) to changes in prey nitrogen:carbon (N:C). Changes in PM simulated the phenomena of "surge feeding" and "prey rejection". Changes in AE simulated sub-optimal assimilation of material from ingested prey, which in turn, served to decrease the ingestion rate on this material. The model was parameterised using laboratory data sets that followed ingestion of non-growing phytoplankton prey of different N:C ratio by a micro-flagellate predator. Investigative simulations in transient conditions, incorporating growing prey and hence with changing N:C ratio, indicated both PM and AE influenced the quantitative and temporal dynamics of C transfer to the higher trophic level. In particular, we noted that although various model formulations predicted similar trophic transfer of C, this was achieved on very different time scales. The inclusion of heterotrophic micro-zooplankton within food web models is a necessary step in accurate prediction of pelagic nutrient flux but requires physiological models carefully parameterised and tested in both steady state and transient conditions to ensure accurate simulation. (C) 2003 Editions scientifiques et medicales Elsevier SAS. All rights reserved. [References: 37]
机译:建立了数学模型来表示异养海洋微浮游动物对被摄食物质的捕食和吸收动力学。修改捕食碳(C)浓度的矩形双曲函数,以模拟这些生物对猎物营养质量的反应,从而模拟了猎物的选择性。我们选择猎物N:C比作为选择性的指标,并将最大捕食率(PM)和同化效率(AE)与猎物氮:碳(N:C)的变化相关。 PM的变化模拟了“激增投喂”和“猎物拒绝”现象。 AE的变化模拟了食入猎物对材料的次优吸收,进而降低了该物质的食入率。使用实验室数据集对模型进行参数化,然后通过微鞭毛捕食者摄取不同N:C比的未生长的浮游植物猎物。在瞬态条件下的调查模拟,包括不断增长的猎物,因此随着N:C比率的变化,表明PM和AE都影响了C向较高营养级转移的数量和时间动态。特别是,我们注意到,尽管各种模型公式都预测了C的类似营养传递,但这是在非常不同的时间尺度上实现的。食物网模型中包含异养微藻类是精确预测中上层养分通量的必要步骤,但需要对生理模型进行仔细参数设置并在稳态和瞬态条件下进行测试,以确保精确模拟。 (C)2003版《科学与医学》 Elsevier SAS。版权所有。 [参考:37]

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