Department of Chemistry and Biochemistry, University of Alaska Fairbanks, Fairbanks, AK, USA.
Institute of Arctic Biology, Center for Transformative Research in Metabolism, University of Alaska Fairbanks, Fairbanks, AK, USA.
Nat Metab. 2020 Dec;2(12):1459-1471. doi: 10.1038/s42255-020-00312-4. Epub 2020 Dec 7.
Hibernation is a state of extraordinary metabolic plasticity. The pathways of amino acid metabolism as they relate to nitrogen homeostasis in hibernating mammals in vivo are unknown. Here we show, using pulse isotopic tracing, evidence of increased myofibrillar (skeletal muscle) protein breakdown and suppressed whole-body production of metabolites in vivo throughout deep torpor. As whole-body production of metabolites is suppressed, amino acids with nitrogenous side chains accumulate during torpor, while urea cycle intermediates do not. Using N stable isotope methodology in arctic ground squirrels (Urocitellus parryii), we provide evidence that free nitrogen is buffered and recycled into essential amino acids, non-essential amino acids and the gamma-glutamyl system during the inter-bout arousal period of hibernation. In the absence of nutrient intake or physical activity, our data illustrate the orchestration of metabolic pathways that sustain the provision of essential and non-essential amino acids and prevent ammonia toxicity during hibernation.
冬眠是一种非凡的代谢可塑性状态。在体内冬眠哺乳动物的氮平衡中,与氨基酸代谢途径相关的内容尚不清楚。在这里,我们使用脉冲同位素示踪法,在深度冬眠期间,体内肌原纤维(骨骼肌)蛋白分解增加和全身代谢物生成受到抑制的证据。由于全身代谢物的生成受到抑制,在冬眠期间,含氮侧链的氨基酸会积累,而尿素循环中间产物则不会。我们使用北极地松鼠(Urocitellus parryii)中的 N 稳定同位素方法,提供了证据表明,在冬眠的间歇觉醒期间,自由氮被缓冲并回收成必需氨基酸、非必需氨基酸和谷氨酰系统。在没有营养摄入或体力活动的情况下,我们的数据说明了代谢途径的协调,这些代谢途径维持了必需和非必需氨基酸的供应,并防止了冬眠期间的氨毒性。