Flight muscle mitochondria are robust against endurance flight damage in blackpoll warblers Setophaga striata

IF 1.8 3区 生物学 Q1 ORNITHOLOGY
Soren Z. Coulson, Catherine M. Ivy, James F. Staples, Christopher G. Guglielmo
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Abstract

Migratory birds are physiologically challenged by intense exercise while fasting during flights that may last hours to days. Exercise-induced oxidative stress could compromise flight performance by inducing mitochondrial dysfunction in the flight muscle. Endurance flight is partially fuelled by the catabolism of lean tissues, but how this catabolism is partitioned between different organs and muscles has not been previously studied under controlled conditions. We hypothesized that simulated migratory flight would result in dysfunction of flight muscle mitochondria, and selective catabolism of lean tissues. We predicted that simulated migratory flight would cause reduced mitochondrial oxidative phosphorylation capacity while increasing emission of reactive oxygen species (ROS) and that lean tissue mass catabolism would preferentially occur in digestive organs not needed in flight. We measured mitochondrial function, muscle morphology and the wet masses of organs and muscles following 8-hour wind tunnel flights in blackpoll warblers Setophaga striata, which use multi-day nonstop flights as part of their migration strategy. In contrast to our predictions, we found that simulated migratory flight did not alter mitochondrial fatty acid oxidation capacity or ROS emission. However, flight and fasting increased whole-animal lean mass catabolism and were associated with reductions in the masses of liver, gizzard and proventriculus, but masses of tissues in the flight apparatus (pectoralis, heart, lungs) were unaffected. Pectoralis muscle fiber morphology was also unchanged over the tested flight duration. Our findings indicate that mitochondrial function in blackpoll warblers is robust against damage induced by simulated migratory flight, and energy deprivation is sufficient for organ catabolism.

Abstract Image

Abstract Image

Abstract Image

黑尾莺飞行肌线粒体对耐力飞行损伤具有较强的抵抗能力
候鸟在飞行期间可能持续数小时至数天的禁食期间进行剧烈运动,这对它们的生理构成了挑战。运动诱导的氧化应激可能通过诱导飞行肌的线粒体功能障碍而损害飞行性能。耐力飞行部分是由瘦组织的分解代谢提供燃料的,但是这种分解代谢如何在不同的器官和肌肉之间分配,以前还没有在受控条件下研究过。我们假设模拟迁徙飞行会导致飞行肌线粒体功能障碍,以及瘦组织的选择性分解代谢。我们预测,模拟迁徙飞行会导致线粒体氧化磷酸化能力降低,同时增加活性氧(ROS)的排放,并且瘦组织的大量分解代谢优先发生在飞行中不需要的消化器官中。在8小时的风洞飞行后,我们测量了黑腹莺Setophaga striata的线粒体功能、肌肉形态和器官和肌肉的湿块,黑腹莺使用多日不间断飞行作为其迁徙策略的一部分。与我们的预测相反,我们发现模拟迁徙飞行不会改变线粒体脂肪酸氧化能力或ROS排放。然而,飞行和禁食增加了全动物瘦质量分解代谢,并与肝脏、胗和前脑室体积的减少有关,但飞行器官(胸肌、心脏、肺)的组织体积未受影响。在测试的飞行时间内,胸肌肌纤维形态也没有变化。我们的研究结果表明,黑尾莺的线粒体功能对模拟迁徙飞行引起的损伤具有强大的抵抗能力,能量剥夺足以进行器官分解代谢。
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来源期刊
Journal of Avian Biology
Journal of Avian Biology 生物-鸟类学
CiteScore
3.70
自引率
0.00%
发文量
56
审稿时长
3 months
期刊介绍: Journal of Avian Biology publishes empirical and theoretical research in all areas of ornithology, with an emphasis on behavioural ecology, evolution and conservation.
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