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Hypoxia Performance Curve: Assess a Whole-Organism Metabolic Shift from a Maximum Aerobic Capacity towards a Glycolytic Capacity in Fish

机译:缺氧性能曲线:评估从最大的有氧能力朝向鱼类的糖浆容量的全体生物代谢转变

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摘要

The utility of measuring whole-animal performance to frame the metabolic response to environmental hypoxia is well established. Progressively reducing ambient oxygen (O2) will initially limit maximum metabolic rate as a result of a hypoxemic state and ultimately lead to a time-limited, tolerance state supported by substrate-level phosphorylation when the O2 supply can no longer meet basic needs (standard metabolic rate, SMR). The metabolic consequences of declining ambient O2 were conceptually framed for fishes initially by Fry’s hypoxic performance curve, which characterizes the hypoxemic state and its consequences to absolute aerobic scope (AAS), and Hochachka’s concept of scope for hypoxic survival, which characterizes time-limited life when SMR cannot be supported by O2 supply. Yet, despite these two conceptual frameworks, the toolbox to assess whole-animal metabolic performance remains rather limited. Here, we briefly review the ongoing debate concerning the need to standardize the most commonly used assessments of respiratory performance in hypoxic fishes, namely critical O2 (the ambient O2 level below which maintenance metabolism cannot be sustained) and the incipient lethal O2 (the ambient O2 level at which a fish loses the ability to maintain upright equilibrium), and then we advance the idea that the most useful addition to the toolbox will be the limiting-O2 concentration (LOC) performance curve. Using Fry & Hart’s (1948) hypoxia performance curve concept, an LOC curve was subsequently developed as an eco-physiological framework by Neil et al. and derived for a group of fish during a progressive hypoxia trial by Claireaux and Lagardère (1999). In the present review, we show how only minor modifications to available respirometry tools and techniques are needed to generate an LOC curve for individual fish. This individual approach to the LOC curve determination then increases its statistical robustness and importantly opens up the possibility of examining individual variability. Moreover, if peak aerobic performance at a given ambient O2 level of each individual is expressed as a percentage of its AAS, the water dissolved O2 that supports 50% of the individual’s AAS (DOAAS-50) can be interpolated much like the P50 for an O2 hemoglobin dissociation curve (when hemoglobin is 50% saturated with O2). Thus, critical O2, incipient lethal O2, DOAAS-50 and P50 and can be directly compared within and across species. While an LOC curve for individual fish represents a start to an ongoing need to seamlessly integrate aerobic to anaerobic capacity assessments in a single, multiplexed respirometry trial, we close with a comparative exploration of some of the known whole-organism anaerobic and aerobic capacity traits to examine for correlations among them and guide the next steps.
机译:确定全动物性能以框架对环境缺氧的代谢反应的效用。逐步减少环境氧(O2)将最初限制由于缺氧状态而最大的代谢率,并且当O2供应不再满足基本需求时,最终导致基材级磷酸化支持的时间有限的耐受状态(标准代谢率,SMR)。衰落的环境O2的代谢后果是概念性地由Fry的缺氧性能曲线造成的鱼类框架,这表征了缺氧状态及其对绝对有氧范围(AAS)的后果,以及Hochachka的缺氧生存范围的概念,其特征在于延时的寿命当O2电源不能支持SMR时。然而,尽管这两种概念框架,但是为了评估全动物代谢性能的工具箱仍然是有限的。在这里,我们简要介绍了有必要标准化最常用的呼吸性能评估的持续辩论,即关键的O2(低于维持代谢不能持续的环境O2水平)和初期的致死O2(环境o2鱼类失去维持直立均衡的能力的级别,然后我们推进了工具箱最有用的补充是限制-O2浓度(LOC)性能曲线。使用Fry&Hart's(1948)缺氧性能曲线概念,随后由Neil等人作为生态生理框架开发的LOC曲线。在Claireaux和Lagardère(1999年)的进步缺氧试验期间,为一群鱼衍生出来。在本综述中,我们展示只需要对可用的呼吸测定工具和技术进行微小修改来生成单个鱼的LOC曲线。这种单独的LOC曲线测定方法然后增加其统计稳健性,并重要地开辟了检查个体变异性的可能性。此外,如果每种单独的给定环境O2水平的峰值有氧性能表示为其AA的百分比,则支持50%的个体AAS(DOAAS-50)的水溶解O2可以是相似的,如P50 O2血红蛋白解离曲线(当血红蛋白为50%时用O 2饱和)。因此,临界O2,初期致致死O2,DOAAS-50和P50,可以在物种内和跨越物种内直接比较。虽然个别鱼的LOC曲线代表了持续的需要在单一多重呼吸测定的试验中无序地将好氧能够与厌氧容量评估无缝地集成,但我们与一些已知的全体生物体厌氧和有氧能力性状的比较探索检查它们之间的相关性并指导下一步。

著录项

  • 期刊名称 Metabolites
  • 作者单位
  • 年(卷),期 2021(11),7
  • 年度 2021
  • 页码 447
  • 总页数 16
  • 原文格式 PDF
  • 正文语种
  • 中图分类
  • 关键词

    机译:缺氧;最大氧气吸收;标准代谢率;p;

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