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本文引用的文献

1
Fructose-driven glycolysis supports anoxia resistance in the naked mole-rat.果糖驱动的糖酵解支持裸鼹鼠的抗缺氧能力。
Science. 2017 Apr 21;356(6335):307-311. doi: 10.1126/science.aab3896.
2
Naked mole rats exhibit metabolic but not ventilatory plasticity following chronic sustained hypoxia.裸鼹鼠在长期持续性低氧后表现出代谢可塑性,但未表现出通气可塑性。
Proc Biol Sci. 2016 Mar 30;283(1827):20160216. doi: 10.1098/rspb.2016.0216.
3
Oxygen in demand: How oxygen has shaped vertebrate physiology.氧气需求:氧气如何塑造脊椎动物生理学。
Comp Biochem Physiol A Mol Integr Physiol. 2015 Aug;186:4-26. doi: 10.1016/j.cbpa.2014.10.029. Epub 2015 Feb 16.
4
Adenosine receptors mediate the hypoxic ventilatory response but not the hypoxic metabolic response in the naked mole rat during acute hypoxia.在急性缺氧期间,腺苷受体介导裸鼹鼠的低氧通气反应,但不介导其低氧代谢反应。
Proc Biol Sci. 2015 Feb 7;282(1800):20141722. doi: 10.1098/rspb.2014.1722.
5
Hypoxia progressively lowers thermal gaping thresholds in bearded dragons, Pogona vitticeps.低氧会逐渐降低鬃狮蜥(Pogona vitticeps)的热张口阈值。
J Exp Biol. 2005 Sep;208(Pt 17):3321-30. doi: 10.1242/jeb.01773.
6
Nitrous oxide reduces thiopental-induced prolongation of survival in hypoxic and anoxic mice.氧化亚氮可减轻硫喷妥钠诱导的低氧和缺氧小鼠存活时间延长。
Anesth Analg. 1987 Jan;66(1):47-52.
7
Comparative effects of hypoxia on behavioral thermoregulation in rats, hamsters, and mice.缺氧对大鼠、仓鼠和小鼠行为性体温调节的比较影响。
Am J Physiol. 1991 Jan;260(1 Pt 2):R120-5. doi: 10.1152/ajpregu.1991.260.1.R120.

裸鼹鼠对急性缺氧和缺氧的行为反应。

Behavioural responses of naked mole rats to acute hypoxia and anoxia.

机构信息

Department of Biology, University of Ottawa, 30 Marie Curie Private, Ottawa, Ontario, Canada K1N 6N5.

Department of Biology, University of Ottawa, 30 Marie Curie Private, Ottawa, Ontario, Canada K1N 6N5

出版信息

Biol Lett. 2017 Dec;13(12). doi: 10.1098/rsbl.2017.0545.

DOI:10.1098/rsbl.2017.0545
PMID:29263131
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5746535/
Abstract

Naked mole rats (NMRs) are among the most hypoxia-tolerant mammals. Other species respond to hypoxia by either escaping the hypoxic environment or drastically decreasing behavioural activity and body temperature () to conserve energy. However, NMRs rarely leave their underground burrows, which are putatively hypoxic and thermally stable near the NMRs' preferred Therefore, we asked whether NMRs are able to employ behavioural and thermoregulatory strategies in response to hypoxia despite their need to remain active and the minimal thermal scope in their burrows. We exposed NMRs to progressively deeper levels of hypoxia (from 21 to 0% O) while measuring their behaviour and Behavioural activity decreased 40-60% in hypoxia and decreased slightly in moderate hypoxia (5-9%) and then further with deeper hypoxia (3% O). However, even at 3% O NMRs remained somewhat active and warm, and continued to explore their environment. Remarkably, NMRs were active for greater than 90 s in acute anoxia and and metabolic rate decreased rapidly. We conclude that NMRs are adapted to remain awake and functional even at the extremes of their hypoxia-tolerance. This adaptation likely reflects variable and challenging levels of environmental hypoxia in the natural habitat of this species.

摘要

裸鼹鼠(NMRs)是对缺氧最耐受的哺乳动物之一。其他物种在应对缺氧时,要么逃离缺氧环境,要么大幅降低行为活动和体温()以节省能量。然而,NMR 很少离开它们的地下洞穴,这些洞穴据称是缺氧的,并且在 NMR 最喜爱的温度附近保持稳定()。因此,我们想知道,尽管 NMR 需要保持活跃,并且它们的洞穴中的热范围很小,它们是否能够采用行为和体温调节策略来应对缺氧。我们将 NMR 暴露在逐渐加深的缺氧水平(从 21%到 0% O)下,同时测量它们的行为和。在缺氧环境中,行为活动减少了 40-60%,在中度缺氧(5-9%)中略有减少,然后在更深的缺氧(3% O)中进一步减少。然而,即使在 3% O 下,NMR 仍然保持一定的活动和温暖,并且继续探索它们的环境。值得注意的是,NMR 在急性缺氧和时可以保持活跃超过 90 秒,代谢率迅速下降。我们得出的结论是,NMR 适应了在其耐缺氧能力的极限下保持清醒和功能。这种适应可能反映了该物种自然栖息地中环境缺氧的变化和挑战性水平。