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Biology subjects

Harrison, J. F.

Publications and source records attributed to Harrison, J. F..

3 recordsLinked to original sources

Evolution of neurometabolic frugality in harvester ants

Despite the importance of neurometabolic costs in brain size evolution, quantitative data on brain metabolic rates are lacking. We measured ex vivo brain metabolic rates among species of the ant genus Pogonomyrmex to differentiate the roles of sociality and body size in brain evolution in a phylogenetic context. Worker body size and colony size (a proxy for social complexity) vary significantly among Pogonomyrmex species and were positively correlated. However, sociality was not a determinant of brain energetics. Worker body size strongly affected brain metabolism: 38% of resting metabolic rate was attributable to brain metabolism in species with the smallest workers, compared to 6% in species with the largest workers. More derived species had strikingly lower mass-specific brain metabolic costs, suggesting that increases in worker body size have selected for neurometabolic frugality through reductions in brain mass-specific metabolic rate. Additionally, smaller worker body sizes may require higher brain mass-specific energetic costs to achieve comparable performance by absolutely smaller brains. Our study shows that the social brain hypothesis does not explain patterns of brain size in Pogonomyrmex, but body size and evolutionary history strongly influence brain evolution in regard to both size and metabolic cost.

zoology↗

Body mass and growth rates predict protein intake across animals

Organisms require dietary macronutrients in specific ratios to maximize performance, and variation in macronutrient requirements plays a central role in niche determination. Although it is well-recognized that development and body size can have strong and predictable effects on many aspects of organismal function, we lack a predictive understanding of ontogenetic or scaling effects on macronutrient intake. We determined protein and carbohydrate intake throughout development on lab populations of locusts and tested whether lab responses can predict results for field populations. Self-selected protein:carbohydrate targets declined dramatically through ontogeny, due primarily to declines in mass-specific protein consumption rates which were highly correlated with declines in specific growth rates. Importantly, lab results for protein consumption rates predicted results for field-collected locusts. However, field locusts consumed nearly double the carbohydrate, likely due to higher activity and metabolic rates. Combining our results with the available data for animals, both across species and during ontogeny, protein consumption scaled predictably and hypometrically, demonstrating a new scaling rule key for understanding nutritional ecology.

ecology↗

Isometric Spiracular Scaling in Scarab Beetles: Implications for Diffusive and Advective Oxygen Transport

The scaling of respiratory structures has been hypothesized to be a major driving factor in the evolution of many aspects of animal physiology. Here we provide the first assessment of the scaling of the spiracles in insects using ten scarab beetle species differing 180x in mass, including some of the most massive extant insect species. Using X-ray microtomography, we measured the cross-sectional area and depth of all eight spiracles, enabling the calculation of their diffusive and advective capacities. Each of these metrics scaled with geometric isometry.Because diffusive capacities scale with lower slopes than metabolic rates, the largest beetles measured require 10-fold higher PO2 gradients across the spiracles to sustain metabolism by diffusion compared to the smallest species. Large beetles can exchange sufficient oxygen for resting metabolism by diffusion across the spiracles, but not during flight. In contrast, spiracular advective capacities scale similarly or more steeply than metabolic rates, so spiracular advective capacities should match or exceed respiratory demands in the largest beetles. These data illustrate a general principle of gas exchange: scaling of respiratory transport structures with geometric isometry diminishes the potential for diffusive gas exchange but enhances advective capacities; combining such structural scaling with muscle-driven ventilation allows larger animals to achieve high metabolic rates when active.

physiology↗