2013Functional EcologyRequires access

Quantifying the cost of thermoregulation: thermal and energetic constraints on growth rates in hatchling lizards

Casey L. Brewster, Robert S. Sikes, Matthew E. Gifford

Open publisher page 50 citations

Abstract

Summary The optimality model of thermoregulation predicts that as the cost of thermoregulation increases, thermoregulation effort will decrease. We designed a manipulative experiment to quantify the energetic cost of thermoregulation on growth rates in eastern collared lizards (Crotaphytus collaris) by comparing growth of hatchling lizards from high‐ and low energetic cost of thermoregulation treatments. We designed treatments to mimic restricted thermal microenvironments (which require lizards to devote more time and energy to maintain preferred body temperatures) and unrestricted thermal micro‐environments (which minimize time and energy needed to maintain body temperature). Lizards maintained similar body temperature between treatments – contradicting predictions of the optimality model of thermoregulation – but grew more slowly in the high‐cost thermoregulation treatment than in the low‐cost thermoregulation treatment. The reduction in growth rates in the high energetic cost thermoregulation treatment was most consistent with animals diverting energy from growth to locomotion for thermoregulation.

About this research paper

What this paper is about

Summary The optimality model of thermoregulation predicts that as the cost of thermoregulation increases, thermoregulation effort will decrease. We designed a manipulative experiment to quantify the energetic cost of thermoregulation on growth rates in eastern collared lizards (Crotaphytus collaris) by comparing growth of hatchling lizards from high‐ and low energetic cost of thermoregulation treatments. We designed treatments to mimic restricted thermal microenvironments (which require lizards to devote more time and energy to maintain preferred body temperatures) and unrestricted thermal micro‐environments (which minimize time and energy needed to maintain body temperature). Lizards maintained similar body temperature between treatments – contradicting predictions of the optimality model of thermoregulation – but grew more slowly in the high‐cost thermoregulation treatment than in the low‐cost thermoregulation treatment. The reduction in growth rates in the high energetic cost thermoregulation treatment was most consistent with animals diverting energy from growth to locomotion for thermoregulation.

Why it matters

OpenAlex reports 50 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

Summary The optimality model of thermoregulation predicts that as the cost of thermoregulation increases, thermoregulation effort will decrease. We designed a manipulative experiment to quantify the energetic cost of thermoregulation on growth rates in eastern collared lizards (Crotaphytus collaris) by comparing growth of hatchling lizards from high‐ and low energetic cost of thermoregulation treatments. We designed treatments to mimic restricted thermal microenvironments (which require lizards to devote more time and energy to maintain preferred body temperatures) and unrestricted thermal micro‐environments (which minimize time and energy needed to maintain body temperature). Lizards maintained similar body temperature between treatments – contradicting predictions of the optimality model of thermoregulation – but grew more slowly in the high‐cost thermoregulation treatment than in the low‐cost thermoregulation treatment. The reduction in growth rates in the high energetic cost thermoregulation treatment was most consistent with animals diverting energy from growth to locomotion for thermoregulation.

Key concepts: Thermoregulation, Hatchling, Biology, Ecology, Hatching

Related papers

Back to paper searchBrowse research topicsOriginal source
Quantifying the cost of thermoregulation: thermal and energetic constraints on growth rates in hatchling lizards — Research Paper | ScholarLens