Oxidative state is associated with migration distance, but not traits linked to flight energetics

IF 1.5 3区 生物学 Q1 ORNITHOLOGY
Péter László Pap, Orsolya Vincze, Csongor I. Vágási
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Abstract

Flight can be highly energy demanding, but its efficiency depends largely on flight style, wing shape and wing loading, and a range of morphological and lifestyle adaptations that can modify the cost of sustained flight. Such behavioural and morphological adaptations can also influence the physiological costs associated with migration. For instance, during intense flight and catabolism of reserves, lipid damage induced by pro-oxidants increases, and to keep oxidative physiological homeostasis under control, the antioxidant machinery can be upregulated. Studies on the oxidative physiology of endurance flight have produced contradictory results, making generalization difficult, especially because multispecies studies are missing. Therefore, to explore the oxidative cost of flight and migration, we used samples collected during the breeding season from 113 European bird species and explored the associations of measures of antioxidant capacity (total antioxidant status, uric acid and glutathione concentration) and oxidative damage of lipids (malondialdehyde) with variables reflecting flight energetics (year-round or specifically during migration) using a phylogenetic framework. We found that none of the traits predicting year-round flight energy expenditure (flight style, wing morphology and flight muscle morphology) explained any measures of oxidative state. Our results suggest that birds endure their everyday flight exercise without or with low oxidative cost. However, oxidative damage to lipids and one component of the endogenous antioxidant system (uric acid), measured after the end of spring migration on breeding adult birds, increased with migration distance. Our results suggest that migration could have oxidative consequences that might be carried over to subsequent life-history stages (breeding).

Abstract Image

氧化状态与迁移距离有关,但与飞行能量学无关
飞行可能需要大量的能量,但其效率很大程度上取决于飞行方式、机翼形状和机翼载荷,以及一系列形态和生活方式的适应,这些适应可以改变持续飞行的成本。这种行为和形态上的适应也会影响与迁徙相关的生理成本。例如,在储备的剧烈飞行和分解代谢过程中,由促氧化剂引起的脂质损伤增加,为了控制氧化生理稳态,可以上调抗氧化机制。关于耐力飞行的氧化生理研究产生了相互矛盾的结果,使得推广变得困难,特别是由于缺乏多物种研究。因此,为了探索飞行和迁徙的氧化成本,我们使用了在繁殖季节收集的113种欧洲鸟类的样本,并利用系统发育框架探索了抗氧化能力(总抗氧化状态、尿酸和谷胱甘肽浓度)和脂质(丙二醛)氧化损伤与反映飞行能量(全年或特别是在迁徙期间)的变量之间的关系。我们发现,预测全年飞行能量消耗的特征(飞行方式、翅膀形态和飞行肌肉形态)都不能解释氧化状态的任何测量。我们的研究结果表明,鸟类在没有或低氧化成本的情况下进行日常飞行运动。然而,在春季迁徙结束后,对繁殖成鸟的脂质和内源性抗氧化系统的一种成分(尿酸)的氧化损伤随着迁徙距离的增加而增加。我们的研究结果表明,迁徙可能会产生氧化后果,这种后果可能会延续到随后的生活史阶段(繁殖)。
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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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