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Physical constraints on thermoregulation and flight drive morphological evolution in bats

Body size and shape fundamentally determine organismal energy requirements by modulating heat and mass exchange with the environment and the costs of locomotion, thermoregulation, and maintenance. Ecologists have long used the physical linkage between morphology and energy balance to explain why the...

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Autores principales: Rubalcaba, Juan G., Gouveia, Sidney F., Villalobos, Fabricio, Cruz-Neto, Ariovaldo P., Castro, Mario G., Amado, Talita F., Martinez, Pablo A., Navas, Carlos A., Dobrovolski, Ricardo, Diniz-Filho, José Alexandre Felizola, Olalla-Tárraga, Miguel Á.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9169619/
https://www.ncbi.nlm.nih.gov/pubmed/35377801
http://dx.doi.org/10.1073/pnas.2103745119
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author Rubalcaba, Juan G.
Gouveia, Sidney F.
Villalobos, Fabricio
Cruz-Neto, Ariovaldo P.
Castro, Mario G.
Amado, Talita F.
Martinez, Pablo A.
Navas, Carlos A.
Dobrovolski, Ricardo
Diniz-Filho, José Alexandre Felizola
Olalla-Tárraga, Miguel Á.
author_facet Rubalcaba, Juan G.
Gouveia, Sidney F.
Villalobos, Fabricio
Cruz-Neto, Ariovaldo P.
Castro, Mario G.
Amado, Talita F.
Martinez, Pablo A.
Navas, Carlos A.
Dobrovolski, Ricardo
Diniz-Filho, José Alexandre Felizola
Olalla-Tárraga, Miguel Á.
author_sort Rubalcaba, Juan G.
collection PubMed
description Body size and shape fundamentally determine organismal energy requirements by modulating heat and mass exchange with the environment and the costs of locomotion, thermoregulation, and maintenance. Ecologists have long used the physical linkage between morphology and energy balance to explain why the body size and shape of many organisms vary across climatic gradients, e.g., why larger endotherms are more common in colder regions. However, few modeling exercises have aimed at investigating this link from first principles. Body size evolution in bats contrasts with the patterns observed in other endotherms, probably because physical constraints on flight limit morphological adaptations. Here, we develop a biophysical model based on heat transfer and aerodynamic principles to investigate energy constraints on morphological evolution in bats. Our biophysical model predicts that the energy costs of thermoregulation and flight, respectively, impose upper and lower limits on the relationship of wing surface area to body mass (S-MR), giving rise to an optimal S-MR at which both energy costs are minimized. A comparative analysis of 278 species of bats supports the model’s prediction that S-MR evolves toward an optimal shape and that the strength of selection is higher among species experiencing greater energy demands for thermoregulation in cold climates. Our study suggests that energy costs modulate the mode of morphological evolution in bats—hence shedding light on a long-standing debate over bats’ conformity to ecogeographical patterns observed in other mammals—and offers a procedure for investigating complex macroecological patterns from first principles.
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spelling pubmed-91696192022-10-04 Physical constraints on thermoregulation and flight drive morphological evolution in bats Rubalcaba, Juan G. Gouveia, Sidney F. Villalobos, Fabricio Cruz-Neto, Ariovaldo P. Castro, Mario G. Amado, Talita F. Martinez, Pablo A. Navas, Carlos A. Dobrovolski, Ricardo Diniz-Filho, José Alexandre Felizola Olalla-Tárraga, Miguel Á. Proc Natl Acad Sci U S A Biological Sciences Body size and shape fundamentally determine organismal energy requirements by modulating heat and mass exchange with the environment and the costs of locomotion, thermoregulation, and maintenance. Ecologists have long used the physical linkage between morphology and energy balance to explain why the body size and shape of many organisms vary across climatic gradients, e.g., why larger endotherms are more common in colder regions. However, few modeling exercises have aimed at investigating this link from first principles. Body size evolution in bats contrasts with the patterns observed in other endotherms, probably because physical constraints on flight limit morphological adaptations. Here, we develop a biophysical model based on heat transfer and aerodynamic principles to investigate energy constraints on morphological evolution in bats. Our biophysical model predicts that the energy costs of thermoregulation and flight, respectively, impose upper and lower limits on the relationship of wing surface area to body mass (S-MR), giving rise to an optimal S-MR at which both energy costs are minimized. A comparative analysis of 278 species of bats supports the model’s prediction that S-MR evolves toward an optimal shape and that the strength of selection is higher among species experiencing greater energy demands for thermoregulation in cold climates. Our study suggests that energy costs modulate the mode of morphological evolution in bats—hence shedding light on a long-standing debate over bats’ conformity to ecogeographical patterns observed in other mammals—and offers a procedure for investigating complex macroecological patterns from first principles. National Academy of Sciences 2022-04-04 2022-04-12 /pmc/articles/PMC9169619/ /pubmed/35377801 http://dx.doi.org/10.1073/pnas.2103745119 Text en Copyright © 2022 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/This article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Biological Sciences
Rubalcaba, Juan G.
Gouveia, Sidney F.
Villalobos, Fabricio
Cruz-Neto, Ariovaldo P.
Castro, Mario G.
Amado, Talita F.
Martinez, Pablo A.
Navas, Carlos A.
Dobrovolski, Ricardo
Diniz-Filho, José Alexandre Felizola
Olalla-Tárraga, Miguel Á.
Physical constraints on thermoregulation and flight drive morphological evolution in bats
title Physical constraints on thermoregulation and flight drive morphological evolution in bats
title_full Physical constraints on thermoregulation and flight drive morphological evolution in bats
title_fullStr Physical constraints on thermoregulation and flight drive morphological evolution in bats
title_full_unstemmed Physical constraints on thermoregulation and flight drive morphological evolution in bats
title_short Physical constraints on thermoregulation and flight drive morphological evolution in bats
title_sort physical constraints on thermoregulation and flight drive morphological evolution in bats
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9169619/
https://www.ncbi.nlm.nih.gov/pubmed/35377801
http://dx.doi.org/10.1073/pnas.2103745119
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