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Byrnes, E. E.

Publications and source records attributed to Byrnes, E. E..

2 recordsLinked to original sources

Daily time constraints limit behavioural capacity to cope with thermally increased metabolic demands

Increased environmental temperatures result in greater energy demands for ectotherms, however, it is currently not clear if these energy demands can effectively be met by increased foraging effort. Here, we tested the temperature dependence of foraging effort and metabolic rate in an aquatic ectotherm across its entire natural thermal range. We developed a novel hidden Markov model to detect behavioural states in long-term body acceleration data collected from free-ranging bull sharks between 19 and 33 {degrees}C, and found that increasing temperature altered both the timing and extent of foraging effort. Our data revealed asymmetrical increases of metabolic demands and foraging effort; standard metabolic rates increased exponentially with temperature, but foraging effort increased logarithmically. The observed decoupling of foraging effort and energy demand suggests individuals face increased energy deficits at higher temperatures, confirmed by concomitant reductions in body condition measured in this population with increasing temperatures. We suggest that alterations in the well-established trade-offs between foraging and predation risk coupled with time constraints imposed by high temperatures limit the capacity of animals to cope with environmental temperatures well below critical temperatures.

ecology↗

Intraspecific scaling of home range size and its bioenergetic dependence

Home range size and metabolic rate of animals are expected to scale with body mass at similar rates; with home ranges expanding to meet increased metabolic requirements. This expectation has widely been tested using lab-derived estimates of basal metabolic rate as proxies for field energy requirements, however, it is unclear if existing theory aligns with patterns of home range scaling observed in the field. Here, we conduct the first direct field test of the relationship between home range and metabolic rate allometry. Using acoustic telemetry, we simultaneously measured the individual home range size and field metabolic rate of lemon sharks (Negaprion brevirostris) spanning one order of magnitude in body mass. Although scaling rates of field metabolic rate were consistent with standard metabolic rate, home range size scaled at shallower rates than metabolic rates. This is evidence for strong top-down controls on home range scaling rates, likely a result of predation pressure placing constraints on home range expansions. Consequently, direct resource competition can lead to decreased home range scaling rates. We highlight inconsistencies with theory on the effects of population density and competition on home range scaling and propose that the influence of diverse types of competition should be examined.

ecology↗