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Interactive effects of predation risk and conspecific density on the nutrient stoichiometry of prey

The mere presence of predators (i.e., predation risk) can alter consumer physiology by restricting food intake and inducing stress, which can ultimately affect prey‐mediated ecosystem processes such as nutrient cycling. However, many environmental factors, including conspecific density, can mediate...

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Autores principales: Guariento, Rafael D., Carneiro, Luciana S., Jorge, Jaqueiuto S., Borges, Angélica N., Esteves, Francisco A., Caliman, Adriano
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4662331/
https://www.ncbi.nlm.nih.gov/pubmed/26640656
http://dx.doi.org/10.1002/ece3.1740
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author Guariento, Rafael D.
Carneiro, Luciana S.
Jorge, Jaqueiuto S.
Borges, Angélica N.
Esteves, Francisco A.
Caliman, Adriano
author_facet Guariento, Rafael D.
Carneiro, Luciana S.
Jorge, Jaqueiuto S.
Borges, Angélica N.
Esteves, Francisco A.
Caliman, Adriano
author_sort Guariento, Rafael D.
collection PubMed
description The mere presence of predators (i.e., predation risk) can alter consumer physiology by restricting food intake and inducing stress, which can ultimately affect prey‐mediated ecosystem processes such as nutrient cycling. However, many environmental factors, including conspecific density, can mediate the perception of risk by prey. Prey conspecific density has been defined as a fundamental feature that modulates perceived risk. In this study, we tested the effects of predation risk on prey nutrient stoichiometry (body and excretion). Using a constant predation risk, we also tested the effects of varying conspecific densities on prey responses to predation risk. To answer these questions, we conducted a mesocosm experiment using caged predators (Belostoma sp.), and small bullfrog tadpoles (Lithobates catesbeianus) as prey. We found that L. catesbeianus tadpoles adjust their body nutrient stoichiometry in response to predation risk, which is affected by conspecific density. We also found that the prey exhibited strong morphological responses to predation risk (i.e., an increase in tail muscle mass), which were positively correlated to body nitrogen content. Thus, we pose the notion that in risky situations, adaptive phenotypic responses rather than behavioral ones might partially explain why prey might have a higher nitrogen content under predation risk. In addition, the interactive roles of conspecific density and predation risk, which might result in reduced perceived risk and physiological restrictions in prey, also affected how prey stoichiometry responded to the fear of predation.
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spelling pubmed-46623312015-12-04 Interactive effects of predation risk and conspecific density on the nutrient stoichiometry of prey Guariento, Rafael D. Carneiro, Luciana S. Jorge, Jaqueiuto S. Borges, Angélica N. Esteves, Francisco A. Caliman, Adriano Ecol Evol Original Research The mere presence of predators (i.e., predation risk) can alter consumer physiology by restricting food intake and inducing stress, which can ultimately affect prey‐mediated ecosystem processes such as nutrient cycling. However, many environmental factors, including conspecific density, can mediate the perception of risk by prey. Prey conspecific density has been defined as a fundamental feature that modulates perceived risk. In this study, we tested the effects of predation risk on prey nutrient stoichiometry (body and excretion). Using a constant predation risk, we also tested the effects of varying conspecific densities on prey responses to predation risk. To answer these questions, we conducted a mesocosm experiment using caged predators (Belostoma sp.), and small bullfrog tadpoles (Lithobates catesbeianus) as prey. We found that L. catesbeianus tadpoles adjust their body nutrient stoichiometry in response to predation risk, which is affected by conspecific density. We also found that the prey exhibited strong morphological responses to predation risk (i.e., an increase in tail muscle mass), which were positively correlated to body nitrogen content. Thus, we pose the notion that in risky situations, adaptive phenotypic responses rather than behavioral ones might partially explain why prey might have a higher nitrogen content under predation risk. In addition, the interactive roles of conspecific density and predation risk, which might result in reduced perceived risk and physiological restrictions in prey, also affected how prey stoichiometry responded to the fear of predation. John Wiley and Sons Inc. 2015-10-06 /pmc/articles/PMC4662331/ /pubmed/26640656 http://dx.doi.org/10.1002/ece3.1740 Text en © 2015 The Authors. Ecology and Evolution published by John Wiley & Sons Ltd. This is an open access article under the terms of the Creative Commons Attribution (http://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Research
Guariento, Rafael D.
Carneiro, Luciana S.
Jorge, Jaqueiuto S.
Borges, Angélica N.
Esteves, Francisco A.
Caliman, Adriano
Interactive effects of predation risk and conspecific density on the nutrient stoichiometry of prey
title Interactive effects of predation risk and conspecific density on the nutrient stoichiometry of prey
title_full Interactive effects of predation risk and conspecific density on the nutrient stoichiometry of prey
title_fullStr Interactive effects of predation risk and conspecific density on the nutrient stoichiometry of prey
title_full_unstemmed Interactive effects of predation risk and conspecific density on the nutrient stoichiometry of prey
title_short Interactive effects of predation risk and conspecific density on the nutrient stoichiometry of prey
title_sort interactive effects of predation risk and conspecific density on the nutrient stoichiometry of prey
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4662331/
https://www.ncbi.nlm.nih.gov/pubmed/26640656
http://dx.doi.org/10.1002/ece3.1740
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