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Triple Oxygen Isotope Measurements (Δ'(17)O) of Body Water Reflect Water Intake, Metabolism, and δ(18)O of Ingested Water in Passerines

Understanding physiological traits and ecological conditions that influence a species reliance on metabolic water is critical to creating accurate physiological models that can assess their ability to adapt to environmental perturbations (e.g., drought) that impact water availability. However, relat...

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Autores principales: Sabat, Pablo, Newsome, Seth D., Pinochet, Stephanie, Nespolo, Roberto, Sanchez-Hernandez, Juan Carlos, Maldonado, Karin, Gerson, Alexander R., Sharp, Zachary D., Whiteman, John P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8450417/
https://www.ncbi.nlm.nih.gov/pubmed/34552501
http://dx.doi.org/10.3389/fphys.2021.710026
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author Sabat, Pablo
Newsome, Seth D.
Pinochet, Stephanie
Nespolo, Roberto
Sanchez-Hernandez, Juan Carlos
Maldonado, Karin
Gerson, Alexander R.
Sharp, Zachary D.
Whiteman, John P.
author_facet Sabat, Pablo
Newsome, Seth D.
Pinochet, Stephanie
Nespolo, Roberto
Sanchez-Hernandez, Juan Carlos
Maldonado, Karin
Gerson, Alexander R.
Sharp, Zachary D.
Whiteman, John P.
author_sort Sabat, Pablo
collection PubMed
description Understanding physiological traits and ecological conditions that influence a species reliance on metabolic water is critical to creating accurate physiological models that can assess their ability to adapt to environmental perturbations (e.g., drought) that impact water availability. However, relatively few studies have examined variation in the sources of water animals use to maintain water balance, and even fewer have focused on the role of metabolic water. A key reason is methodological limitations. Here, we applied a new method that measures the triple oxygen isotopic composition of a single blood sample to estimate the contribution of metabolic water to the body water pool of three passerine species. This approach relies on Δ'(17)O, defined as the residual from the tight linear correlation that naturally exists between δ(17)O and δ(18)O values. Importantly, Δ'17O is relatively insensitive to key fractionation processes, such as Rayleigh distillation in the water cycle that have hindered previous isotope-based assessments of animal water balance. We evaluated the effects of changes in metabolic rate and water intake on Δ'(17)O values of captive rufous-collared sparrows (Zonotrichia capensis) and two invertivorous passerine species in the genus Cinclodes from the field. As predicted, colder acclimation temperatures induced increases in metabolic rate, decreases in water intake, and increases in the contribution of metabolic water to the body water pool of Z. capensis, causing a consistent change in Δ'(17)O. Measurement of Δ'(17)O also provides an estimate of the δ(18)O composition of ingested pre-formed (drinking/food) water. Estimated δ(18)O values of drinking/food water for captive Z. capensis were ~ −11‰, which is consistent with that of tap water in Santiago, Chile. In contrast, δ(18)O values of drinking/food water ingested by wild-caught Cinclodes were similar to that of seawater, which is consistent with their reliance on marine resources. Our results confirm the utility of this method for quantifying the relative contribution of metabolic versus pre-formed drinking/food water to the body water pool in birds.
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spelling pubmed-84504172021-09-21 Triple Oxygen Isotope Measurements (Δ'(17)O) of Body Water Reflect Water Intake, Metabolism, and δ(18)O of Ingested Water in Passerines Sabat, Pablo Newsome, Seth D. Pinochet, Stephanie Nespolo, Roberto Sanchez-Hernandez, Juan Carlos Maldonado, Karin Gerson, Alexander R. Sharp, Zachary D. Whiteman, John P. Front Physiol Physiology Understanding physiological traits and ecological conditions that influence a species reliance on metabolic water is critical to creating accurate physiological models that can assess their ability to adapt to environmental perturbations (e.g., drought) that impact water availability. However, relatively few studies have examined variation in the sources of water animals use to maintain water balance, and even fewer have focused on the role of metabolic water. A key reason is methodological limitations. Here, we applied a new method that measures the triple oxygen isotopic composition of a single blood sample to estimate the contribution of metabolic water to the body water pool of three passerine species. This approach relies on Δ'(17)O, defined as the residual from the tight linear correlation that naturally exists between δ(17)O and δ(18)O values. Importantly, Δ'17O is relatively insensitive to key fractionation processes, such as Rayleigh distillation in the water cycle that have hindered previous isotope-based assessments of animal water balance. We evaluated the effects of changes in metabolic rate and water intake on Δ'(17)O values of captive rufous-collared sparrows (Zonotrichia capensis) and two invertivorous passerine species in the genus Cinclodes from the field. As predicted, colder acclimation temperatures induced increases in metabolic rate, decreases in water intake, and increases in the contribution of metabolic water to the body water pool of Z. capensis, causing a consistent change in Δ'(17)O. Measurement of Δ'(17)O also provides an estimate of the δ(18)O composition of ingested pre-formed (drinking/food) water. Estimated δ(18)O values of drinking/food water for captive Z. capensis were ~ −11‰, which is consistent with that of tap water in Santiago, Chile. In contrast, δ(18)O values of drinking/food water ingested by wild-caught Cinclodes were similar to that of seawater, which is consistent with their reliance on marine resources. Our results confirm the utility of this method for quantifying the relative contribution of metabolic versus pre-formed drinking/food water to the body water pool in birds. Frontiers Media S.A. 2021-09-06 /pmc/articles/PMC8450417/ /pubmed/34552501 http://dx.doi.org/10.3389/fphys.2021.710026 Text en Copyright © 2021 Sabat, Newsome, Pinochet, Nespolo, Sanchez-Hernandez, Maldonado, Gerson, Sharp and Whiteman. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Physiology
Sabat, Pablo
Newsome, Seth D.
Pinochet, Stephanie
Nespolo, Roberto
Sanchez-Hernandez, Juan Carlos
Maldonado, Karin
Gerson, Alexander R.
Sharp, Zachary D.
Whiteman, John P.
Triple Oxygen Isotope Measurements (Δ'(17)O) of Body Water Reflect Water Intake, Metabolism, and δ(18)O of Ingested Water in Passerines
title Triple Oxygen Isotope Measurements (Δ'(17)O) of Body Water Reflect Water Intake, Metabolism, and δ(18)O of Ingested Water in Passerines
title_full Triple Oxygen Isotope Measurements (Δ'(17)O) of Body Water Reflect Water Intake, Metabolism, and δ(18)O of Ingested Water in Passerines
title_fullStr Triple Oxygen Isotope Measurements (Δ'(17)O) of Body Water Reflect Water Intake, Metabolism, and δ(18)O of Ingested Water in Passerines
title_full_unstemmed Triple Oxygen Isotope Measurements (Δ'(17)O) of Body Water Reflect Water Intake, Metabolism, and δ(18)O of Ingested Water in Passerines
title_short Triple Oxygen Isotope Measurements (Δ'(17)O) of Body Water Reflect Water Intake, Metabolism, and δ(18)O of Ingested Water in Passerines
title_sort triple oxygen isotope measurements (δ'(17)o) of body water reflect water intake, metabolism, and δ(18)o of ingested water in passerines
topic Physiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8450417/
https://www.ncbi.nlm.nih.gov/pubmed/34552501
http://dx.doi.org/10.3389/fphys.2021.710026
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