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A model for the description of feeding regulation by mesozooplankton under different conditions of temperature and prey nutritional status

机译:中温浮游动物在不同温度和猎物营养状况下的摄食调节模型

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Ecosystem modelling studies that consider mesozooplankton feeding regulation have primarily focused on the impact of prey nutritional status and temperature separately, despite experimental evidence for strong links between these two factors. Here, we propose a method based on optimal feeding behaviour of individual mesozooplankton that can be used to derive acclimative food ingestion, assimilation, and respiration under different temperature and food conditions. In the model, animals first evaluate the nutritional value of prey organisms based on their temperature-specific demand for energy and structural biochemical substances. They then regulate their feeding behaviour as well as metabolic physiology in order to satisfy their specific biochemical requirements for maintenance and growth. The approach is applicable to all heterotrophic plankton. In the example presented here the model has been configured to simulate egg production by the calanoid copepod Acartia tonsa. The model realistically reproduces the observed rates for egg production, as well as carbon (C) and nitrogen (N) gross growth efficiencies of egg production by Acartia in response to changes in both algal C:N-ratio and temperature. Results suggest that enhanced temperature accelerates respiratory consumption of the N assimilated by mesozooplankton, and thus decreases the rates for reproduction at higher temperatures. They also show that the optimum temperature for maximum egg production increases with algal C:N-ratio. These findings support and extend conclusions previously obtained for mesozooplankton and indicate that ocean warming could alter the role of Acartia spp. in planktonic food webs.
机译:尽管有实验证据表明这两个因素之间有密切联系,但考虑到中游浮游动物摄食调节的生态系统模型研究主要集中在猎物营养状况和温度的影响上。在这里,我们提出了一种基于个体中小浮游动物最佳摄食行为的方法,该方法可用于在不同温度和食物条件下得出适应性食物的摄入,吸收和呼吸作用。在该模型中,动物首先根据温度对能量和结构生化物质的特定需求来评估猎物生物的营养价值。然后,他们调节其进食行为以及代谢生理,以满足其维持和生长的特定生化要求。该方法适用于所有异养浮游生物。在此处显示的示例中,该模型已配置为模拟the足类pe足类car螨的产卵量。该模型真实地再现了观察到的产卵速率,以及响应于藻类C:N比率和温度的变化,A螨产卵的碳(C)和氮(N)的总生长效率。结果表明,温度升高会加速呼吸系统消耗中速浮游生物吸收的氮,从而降低在较高温度下繁殖的速率。他们还表明,最大产蛋量的最佳温度随藻类C:N比的增加而增加。这些发现支持并扩展了先前对中层浮游动物获得的结论,并表明海洋变暖可能改变A螨属的作用。在浮游食物网中。

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