在FABP4/5缺陷小鼠中,由于长时间禁食期间能量稳态受损,运动耐力明显降低。

Q1 Biochemistry, Genetics and Molecular Biology BMC Physiology Pub Date : 2019-03-13 DOI:10.1186/s12899-019-0038-6
Tatsuya Iso, Hikari Haruyama, Hiroaki Sunaga, Miki Matsui, Hiroki Matsui, Rina Tanaka, Yogi Umbarawan, Mas Rizky A A Syamsunarno, Tomoyuki Yokoyama, Masahiko Kurabayashi
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引用次数: 2

摘要

背景:随着运动强度的增加,骨骼肌更倾向于使用碳水化合物而不是脂肪酸(FA)。相反,在禁食期间,骨骼肌减少葡萄糖的使用,更多地依赖于FA。在FABP4和FABP5缺乏的小鼠(双敲除(DKO)小鼠)中,红色骨骼肌和心脏对FA的利用因跨内皮FA运输的损害而显著降低,即使在禁食期间,葡萄糖的使用也会增加,以补偿减少的FA摄取。我们试图确定长时间禁食是否会影响DKO小鼠的运动表现,因为DKO小鼠的葡萄糖利用是恒定的。结果:在进食和禁食状态下进行了一次跑步机运动。初始速度为10 m/min,每5 min逐渐增加5 m/min,直至30 m/min,直至小鼠停止奔跑。DKO基因型和先前禁食显著降低了DKO小鼠的跑步距离,导致禁食DKO小鼠的跑步距离最短。WT和DKO小鼠在运动前长时间禁食期间,骨骼肌和肝脏中的糖原水平几乎耗尽。禁食DKO小鼠骨骼肌中的TG水平并未因运动而降低,这表明运动期间肌内TG未被利用。空腹DKO小鼠的低血糖加速,这种加速可能是由于红色骨骼肌和心脏对葡萄糖的持续利用,其中FA的摄取由于跨内皮FA运输缺陷而减少。综上所述,空腹DKO小鼠血清中的能量供应和骨骼肌中的能量储存非常低,这可能导致运动表现显著下降。结论:FABP4/5在长时间禁食期间维持运动耐力的营养平衡中起重要作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Exercise endurance capacity is markedly reduced due to impaired energy homeostasis during prolonged fasting in FABP4/5 deficient mice.

Background: Skeletal muscle prefers carbohydrate use to fatty acid (FA) use as exercise intensity increases. In contrast, skeletal muscle minimizes glucose use and relies more on FA during fasting. In mice deficient for FABP4 and FABP5 (double knockout (DKO) mice), FA utilization by red skeletal muscle and the heart is markedly reduced by the impairment of trans-endothelial FA transport, with an increase in glucose use to compensate for reduced FA uptake even during fasting. We attempted to determine whether prolonged fasting affects exercise performance in DKO mice, where constant glucose utilization occurs.

Results: A single bout of treadmill exercise was performed in the fed and fasted states. The initial speed was 10 m/min, and gradually increased by 5 m/min every 5 min up to 30 m/min until the mice stopped running. Running distance was significantly reduced by DKO genotype and prior fasting, leading to the shortest distance in fasted DKO mice. Levels of glycogen in skeletal muscle and the liver were nearly depleted in both WT and DKO mice during prolonged fasting prior to exercise. Levels of TG in skeletal muscle were not reduced by exercise in fasted DKO mice, suggesting that intramuscular TG was not utilized during exercise. Hypoglycaemia was accelerated in fasted DKO mice, and this acceleration could be due to constant glucose utilization by red skeletal muscle and the heart where FA uptake is diminished due to defective trans-endothelial FA transport. Taken together, energy supply from serum and storage in skeletal muscle were very low in fasted DKO mice, which could lead to a significant reduction in exercise performance.

Conclusions: FABP4/5 have crucial roles in nutrient homeostasis during prolonged fasting for maintaining exercise endurance capacity.

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来源期刊
BMC Physiology
BMC Physiology Biochemistry, Genetics and Molecular Biology-Physiology
CiteScore
9.60
自引率
0.00%
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0
期刊介绍: BMC Physiology is an open access journal publishing original peer-reviewed research articles in cellular, tissue-level, organismal, functional, and developmental aspects of physiological processes. BMC Physiology (ISSN 1472-6793) is indexed/tracked/covered by PubMed, MEDLINE, BIOSIS, CAS, EMBASE, Scopus, Zoological Record and Google Scholar.
期刊最新文献
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