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裸鼹鼠大脑中的钠钾ATP酶活性受急性缺氧的区域调节。

Na/K-ATPase activity is regionally regulated by acute hypoxia in naked mole-rat brain.

作者信息

Farhat Elie, Devereaux Maiah E M, Cheng Hang, Weber Jean-Michel, Pamenter Matthew E

机构信息

Department of Biology, University of Ottawa, Ottawa, ON, Canada.

Department of Biology, University of Ottawa, Ottawa, ON, Canada; University of Ottawa Brain and Mind Research Institute, Ottawa, ON, Canada.

出版信息

Neurosci Lett. 2021 Nov 1;764:136244. doi: 10.1016/j.neulet.2021.136244. Epub 2021 Sep 14.

Abstract

Matching ATP supply and demand is key to neuronal hypoxia-tolerance and failure to achieve this balance leads to excitotoxic cell death in most adult mammalian brains. Ion pumping is the most energy-demanding process in the brain and some hypoxia-tolerant vertebrates coordinately down-regulate ion movement across neuronal membranes to reduce the workload of energy-expensive ion pumps, and particularly the Na/K-ATPase. Naked mole-rats are among the most hypoxia-tolerant mammals and achieve a hypometabolic state while maintaining brain [ATP] during severe hypoxia; however, whether ionic homeostasis is plastic in naked mole-rat brain is unknown. To examine this question, we exposed animals to 4 h of normoxia or moderate or severe hypoxia (11 or 3% O, respectively) and measured changes in brain Na/K-ATPase activity. We found that 1) whole body metabolic rate decreased ∼25 and 75% in moderate and severe hypoxia, respectively, and 2) Na/K-ATPase activity decreased ∼50% in forebrain but increased 2-fold in cerebellum and was unchanged in brainstem. These results indicate that naked mole-rats acutely modulate brain energy demand in a region-specific manner to prioritize energy usage by the cerebellum. This may support exploration, navigation, and escape behaviours, while also enabling ATP savings when encountering hypoxia in nature.

摘要

使ATP的供应与需求相匹配是神经元耐缺氧能力的关键,而在大多数成年哺乳动物大脑中,无法实现这种平衡会导致兴奋性毒性细胞死亡。离子泵浦是大脑中最耗能的过程,一些耐缺氧的脊椎动物会协同下调跨神经元膜的离子移动,以减少耗能巨大的离子泵,特别是钠钾ATP酶的工作量。裸鼹鼠是最耐缺氧的哺乳动物之一,在严重缺氧期间能达到低代谢状态,同时维持大脑中的ATP水平;然而,裸鼹鼠大脑中的离子稳态是否具有可塑性尚不清楚。为了研究这个问题,我们将动物暴露于常氧、中度或严重缺氧(分别为11%或3%的氧气)环境4小时,并测量大脑钠钾ATP酶活性的变化。我们发现:1)在中度和严重缺氧时,全身代谢率分别降低约25%和75%;2)前脑钠钾ATP酶活性降低约50%,而小脑增加了2倍,脑干则无变化。这些结果表明,裸鼹鼠以区域特异性方式急性调节大脑能量需求,优先保障小脑的能量使用。这可能有助于探索、导航和逃避行为,同时在自然环境中遇到缺氧时也能节省ATP。

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