Metabolic rate represents fundamental processes in ecology and evolution; it determines the rate at which organisms oxidize substrates to energy for growth, reproduction and survival. Metabolic limits, minimum energy use for self-maintenance, and maximum expansion of aerobic performance, define individuals’ energy allocation capabilities. We studied co-expression between metabolic limits, in a species representing an ancient marsupial lineage and hypothetical plesiomorphic mammalian physiology. We partitioned covariation between basal (BMR) and maximum (VO2max) metabolic rates to between- and within-individual components. Contrary to prediction of the aerobic model for endothermy evolution, we found near zero BMR-VO2max correlation on the between-individual level, suggesting null genetic co-variance, or its cancellation by among-individual maintenance-to-capacity trade-off. Instead, a substantial within-individual BMR-VO2max correlation revealed plastic co-expression of the traits in the wild animals responding to environmental variation. Within-individual VO2max-lean mass correlation reinforce the importance of this bioenergetic plasticity mechanism. We conclude that endothermic strategies can be sustained not only by fixed genetic coupling, but also by flexible, condition-dependent trait integration, hypothetically reflecting a physiological plastic property to the early stages of therian evolution.
Camus et al. (Fri,) studied this question.
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