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Balancing heat, water and nutrients under environmental change: a thermodynamic niche framework

机译:在环境变化下平衡热量,水和养分:热力学利基框架

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1. Models of the regulatory behaviour of organisms are fundamental to a strong physiologically-based understanding of species' responses to global environmental change. Biophysical models of heat and water exchange in organisms (biophysical ecology) and nutritionally-explicit models for understanding feeding behaviour and its fitness consequences (the Geometric Framework of nutrition, GF) are providing such an underpinning. However, temperature, water and nutrition interact in fundamental ways in influencing the responses of the organism to their environment, and a priority is to develop an integrated approach for conceptualising and measuring these interactions. 2. Ideally, such an approach would be based on a thermodynamically-formalized energy and mass budgeting approach that is sparsely parameterised and sufficiently general to apply across a range of situations and organisms. Here we illustrate how mass-balance aspects of Dynamic Energy Budget theory can be applied to obtain first-principles estimates of fluxes of 02, C02, H20 and nitrogenous waste. 3. Then, using an herbivorous lizard (Egernia cunninghami) as a case study, we demonstrate how these estimates can be integrated with heat/water exchange models and environmental data to provide aholistic understanding of how foraging strategy, food availability, habitat and weather interact with heat, water and nutrient/energy budgets across the life-cycle. 4. The analysis shows the potential importance of the water balance in affecting the energy budgets of 'dry skinned' ectotherms, especially early in ontogeny, and highlights a significant gap in our knowledge of the physiological and behavioural traits that affect water balance when compared with our knowledge of thermal traits. 5. In general, the modelling approach we describe can provide the thermodynamically-con-strained stage on which other evolutionary and ecological interactions play out; the 'thermodynamic niche'. This in turn provides a solid foundation from which to tackle key questions about organismal responses to environmental change.
机译:1.生物调节行为的模型对于深入了解物种对全球环境变化的反应是至关重要的。生物体中的热与水交换的生物物理模型(生物物理生态学)以及用于理解喂养行为及其适应性后果的营养显式模型(营养的几何框架,GF)提供了这样的基础。但是,温度,水和营养以根本方式相互作用,从而影响生物对环境的反应,因此优先考虑开发一种综合方法,以概念化和测量这些相互作用。 2.理想情况下,这种方法应基于热力学形式化的能源和质量预算方法,该方法的参数稀疏且具有足够的通用性,可应用于各种情况和生物。在这里,我们说明了如何应用动态能量收支理论的质量平衡方面来获得02,CO2,H2O和含氮废物通量的第一性原理估计。 3.然后,以草食蜥蜴(Egernia cunninghami)为例,我们演示了如何将这些估计值与热/水交换模型和环境数据结合起来,以提供对觅食策略,食物可利用性,栖息地和天气如何相互作用的全面理解在整个生命周期中都有热量,水和营养/能量预算。 4.分析表明,水平衡在影响“干性皮肤”等温线的能量收支方面具有潜在的重要性,尤其是在个体发育早期,并且突出了我们对影响水平衡的生理和行为特征的认识与我们对热特性的了解。 5.总的来说,我们描述的建模方法可以提供热力学约束的阶段,在该阶段可以进行其他的演化和生态相互作用。 “热力学利基”。反过来,这为解决有关有机体对环境变化的反应的关键问题提供了坚实的基础。

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