Faculty of Life Sciences, School of Zoology, Tel Aviv University, Tel Aviv, Israel.
Steinhardt Museum of Natural History, Israel National Center for Biodiversity Studies, Tel Aviv, Israel.
Insect Sci. 2024 Apr;31(2):524-532. doi: 10.1111/1744-7917.13250. Epub 2023 Jul 19.
The scaling of the energetic cost of locomotion with body mass is well documented at the interspecific level. However, methodological restrictions limit our understanding of the scaling of flight metabolic rate (MR) in free-flying insects. This is particularly true at the intraspecific level, where variation in body mass and flight energetics may have direct consequences for the fitness of an individual. We applied a C stable isotope method to investigate the scaling of MR with body mass during free-flight in the beetle Batocera rufomaculata. This species exhibits large intraspecific variation in adult body mass as a consequence of the environmental conditions during larval growth. We show that the flight-MR scales with body mass to the power of 0.57, with smaller conspecifics possessing up to 2.3 fold higher mass-specific flight MR than larger ones. Whereas the scaling exponent of free-flight MR was found to be like that determined for tethered-flight, the energy expenditure during free-flight was more than 2.7 fold higher than for tethered-flight. The metabolic cost of flight should therefore be studied under free-flight conditions, a requirement now enabled by the C technique described herein for insect flight.
运动能量成本与体重的比例关系在种间水平上有很好的记录。然而,方法上的限制限制了我们对自由飞行昆虫飞行代谢率 (MR) 比例关系的理解。在种内水平上尤其如此,体重和飞行能量学的变化可能对个体的适应性直接产生影响。我们应用 C 稳定同位素方法来研究在甲虫 Batocera rufomaculata 自由飞行过程中,MR 与体重的比例关系。由于幼虫生长期间的环境条件,该物种的成年体重存在很大的种内变异。我们表明,飞行-MR 与体重的幂次为 0.57,体型较小的同种动物的比重大约是体型较大的动物的 2.3 倍。虽然自由飞行 MR 的比例指数与系绳飞行确定的比例指数相似,但自由飞行期间的能量消耗比系绳飞行高出 2.7 倍以上。因此,应该在自由飞行条件下研究飞行的代谢成本,这一需求现在可以通过本文中描述的 C 技术来实现,该技术适用于昆虫的飞行研究。