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Towards the development of an ecophysiological Daphnia model to examine effects of toxicity and nutrition

机译:朝着生态学的发展 daphnia 模型,用于检查毒性和营养的影响

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Abstract Freshwater ecosystems are highly susceptible to mercury (Hg) deposition, which impacts biotic health and leads to serious consequences through biomagnification. The keystone zooplankter, Daphnia, exerts disproportionate effects on food web dynamics, displaying high sensitivity to natural stressors, and thus serving as an indicator of the broader impairments of aquatic ecosystems. Combined with metabolomics, the study of metabolites and their chemical processes, we have developed a model that attempts to elucidate the interactive effects of Hg toxicity and nutrition on phytoplankton-Daphnia relationships. Our model stipulates a physiological hierarchy, prioritizing different metabolic processes in the order of neurological functions, bioenergetics, osmoregulatory maintenance, waste management, and growth investments. Daphnia resilience is controlled by both food quantity and quality and each physiological process is modulated by the somatic levels of different metabolites. By enriching food with metabolites associated with neurological and energetic physiological pathways, effects of toxicity can be alleviated. Specifically, we demonstrate that metabolites associated with bioenergetics (carbohydrates, fats, proteins, and phosphorus) confer the greatest resilience to physiological changes induced by toxicity. Prey-predator dynamics can change significantly due to the detrimental impacts of toxicity on daphnid physiology and unfavourable nutritional stoichiometry. Under conditions of poor nutrition and extreme toxicity, our model demonstrates that daphnid populations may col
机译:<![cdata [ 抽象 淡水生态系统高易受汞(HG)沉积的影响,影响生物健康,并通过生物宏化导致严重后果。 。 Keystone Zooplankter, Daphnia ,对食品Web动态产生不成比例的影响,对天然压力源显示出高敏感性,因此用作水生生态系统更广泛损害的指标。结合代谢物及其化学过程的研究,我们开发了一种模型,试图阐明Hg毒性和营养对浮游植物的互动影响 - 关系。我们的型号规定了生理层次结构,以神经功能,生物核肉,osmoregulatory维护,废物管理和增长投资的顺序优先考虑不同的代谢过程。 Daphnia 弹性由食物量和质量控制,每个生理过程由不同代谢物的躯体水平调节。通过用与神经系统生理途径相关的代谢产物来富集食物,可以减轻毒性的影响。具体而言,我们证明与生物植物(碳水化合物,脂肪,蛋白质和磷)相关的代谢物赋予毒性诱导的生理变化的最大弹性。由于毒性对Daphnid生理学和不利的营养化学计量的不利影响,捕食者动态可以显着变化。在营养差和极端毒性差的条件下,我们的模式表明Daphnid种群可以

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