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Intraspecific Correlations of Basal and Maximal Metabolic Rates in Birds and the Aerobic Capacity Model for the Evolution of Endothermy

机译:鸟类基础代谢率和最大代谢率的种内相关性和吸热进化的有氧能力模型

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摘要

The underlying assumption of the aerobic capacity model for the evolution of endothermy is that basal (BMR) and maximal aerobic metabolic rates are phenotypically linked. However, because BMR is largely a function of central organs whereas maximal metabolic output is largely a function of skeletal muscles, the mechanistic underpinnings for their linkage are not obvious. Interspecific studies in birds generally support a phenotypic correlation between BMR and maximal metabolic output. If the aerobic capacity model is valid, these phenotypic correlations should also extend to intraspecific comparisons. We measured BMR, Msum (maximum thermoregulatory metabolic rate) and MMR (maximum exercise metabolic rate in a hop-flutter chamber) in winter for dark-eyed juncos (Junco hyemalis), American goldfinches (Carduelis tristis; Msum and MMR only), and black-capped chickadees (Poecile atricapillus; BMR and Msum only) and examined correlations among these variables. We also measured BMR and Msum in individual house sparrows (Passer domesticus) in both summer, winter and spring. For both raw metabolic rates and residuals from allometric regressions, BMR was not significantly correlated with either Msum or MMR in juncos. Moreover, no significant correlation between Msum and MMR or their mass-independent residuals occurred for juncos or goldfinches. Raw BMR and Msum were significantly positively correlated for black-capped chickadees and house sparrows, but mass-independent residuals of BMR and Msum were not. These data suggest that central organ and exercise organ metabolic levels are not inextricably linked and that muscular capacities for exercise and shivering do not necessarily vary in tandem in individual birds. Why intraspecific and interspecific avian studies show differing results and the significance of these differences to the aerobic capacity model are unknown, and resolution of these questions will require additional studies of potential mechanistic links between minimal and maximal metabolic output.
机译:吸热能力发展的有氧能力模型的基本假设是,表型(BMR)和最大有氧代谢率之间存在表型联系。但是,由于BMR在很大程度上是中央器官的功能,而最大的代谢输出在很大程度上是骨骼肌的功能,因此它们之间联系的机制基础并不明显。鸟类间的种间研究通常支持BMR与最大代谢输出之间的表型相关性。如果有氧能力模型有效,这些表型相关性也应扩展到种内比较。我们在冬季测量了黑眼jun(Junco hyemalis),美国金翅雀(Carduelis tristis;仅Msum和MMR)的BMR,Msum(最大体温调节代谢率)和MMR(啤酒花振颤室中的最大运动代谢率),以及黑冠山雀(Poecile atricapillus;仅BMR和Msum),并检查了这些变量之间的相关性。我们还测量了夏季,冬季和春季的单个麻雀(Passer domesticus)中的BMR和Msum。对于原始代谢率和异速回归的残差,BMR与juncos中的Msum或MMR均不显着相关。此外,在Jsum和金翅雀中,Msum和MMR或它们与质量无关的残差之间没有显着相关性。黑顶山雀和麻雀的原始BMR和Msum呈显着正相关,但BMR和Msum的质量无关残基却没有。这些数据表明,中枢器官和运动器官的代谢水平并没有密不可分的联系,并且运动和发抖的肌肉能力不一定会在单个鸟类中串联变化。为什么种内和种间禽类研究显示出不同的结果,而这些差异对有氧能力模型的重要性尚不清楚,而这些问题的解决将需要对最小和最大代谢输出之间潜在的机械联系进行额外的研究。

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