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The Zebrafish Embryo as a Dynamic Model of Anoxia Tolerance

机译:斑马鱼胚胎作为耐缺氧动态模型。

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摘要

Developing organisms depend upon a delicate balance in the supply and demand of energy to adapt to variable oxygen availability, though the essential mechanisms determining such adaptation remain elusive. In this study we examine reversible anoxic arrest and dynamic bioenergetic transitions during zebrafish development. Our data reveal that the duration of anoxic viability corresponds to the developmental stage and anaerobic metabolic rate. Diverse chemical inhibitors of mitochondrial oxidative phosphorylation induce a similar arrest in normoxic embryos, suggesting a pathway responsive to perturbations in aerobic energy production rather than molecular oxygen. Consistent with this concept, arrest is accompanied by rapid activation of the energy-sensing AMP-activated protein kinase pathway, demonstrating a potential link between the sensing of energy status and adaptation to oxygen availability. These observations permit mechanistic insight into energy homeostasis during development that now enable genetic and small molecule screens in this vertebrate model of anoxia tolerance.
机译:发育中的生物体依靠能量供需之间的微妙平衡来适应可变的氧气供应,尽管确定这种适应性的基本机制仍然难以捉摸。在这项研究中,我们研究了斑马鱼发育过程中可逆的缺氧停滞和动态生物能转换。我们的数据表明,缺氧生存力的持续时间对应于发育阶段和厌氧代谢率。线粒体氧化磷酸化的多种化学抑制剂在常氧性胚胎中诱导类似的停滞,提示对有氧能量产生而不是分子氧产生扰动有反应的途径。与该概念一致,逮捕伴随着能量敏感的AMP激活的蛋白激酶途径的快速激活,这证明了能量状态的感知与对氧气可用性的适应之间的潜在联系。这些观察结果使我们能够深入了解发育过程中的能量稳态,现在可以在这种耐缺氧脊椎动物模型中进行基因和小分子筛选。

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