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Paracellular Absorption: A Bat Breaks the Mammal Paradigm

Bats tend to have less intestinal tissue than comparably sized nonflying mammals. The corresponding reduction in intestinal volume and hence mass of digesta carried is advantageous because the costs of flight increase with load carried and because take-off and maneuverability are diminished at heavi...

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Autores principales: Caviedes-Vidal, Enrique, Karasov, William H., Chediack, Juan Gabriel, Fasulo, Verónica, Cruz-Neto, Ariovaldo P., Otani, Lye
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2008
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2173942/
https://www.ncbi.nlm.nih.gov/pubmed/18183305
http://dx.doi.org/10.1371/journal.pone.0001425
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author Caviedes-Vidal, Enrique
Karasov, William H.
Chediack, Juan Gabriel
Fasulo, Verónica
Cruz-Neto, Ariovaldo P.
Otani, Lye
author_facet Caviedes-Vidal, Enrique
Karasov, William H.
Chediack, Juan Gabriel
Fasulo, Verónica
Cruz-Neto, Ariovaldo P.
Otani, Lye
author_sort Caviedes-Vidal, Enrique
collection PubMed
description Bats tend to have less intestinal tissue than comparably sized nonflying mammals. The corresponding reduction in intestinal volume and hence mass of digesta carried is advantageous because the costs of flight increase with load carried and because take-off and maneuverability are diminished at heavier masses. Water soluble compounds, such as glucose and amino acids, are absorbed in the small intestine mainly via two pathways, the transporter-mediated transcellular and the passive, paracellular pathways. Using the microchiropteran bat Artibeus literatus (mean mass 80.6±3.7 g), we tested the predictions that absorption of water-soluble compounds that are not actively transported would be extensive as a compensatory mechanism for relatively less intestinal tissue, and would decline with increasing molecular mass in accord with sieve-like paracellular absorption. Using a standard pharmacokinetic technique, we fed, or injected intraperitonealy the metabolically inert carbohydrates L-rhamnose (molecular mass = 164 Da) and cellobiose (molecular mass = 342 Da) which are absorbed only by paracellular transport, and 3-O-methyl-D-glucose (3OMD-glucose) which is absorbed via both mediated (active) and paracellular transport. As predicted, the bioavailability of paracellular probes declined with increasing molecular mass (rhamnose, 90±11%; cellobiose, 10±3%, n = 8) and was significantly higher in bats than has been reported for laboratory rats and other mammals. In addition, absorption of 3OMD-glucose was high (96±11%). We estimated that the bats rely on passive, paracellular absorption for more than 70% of their total glucose absorption, much more than in non-flying mammals. Although possibly compensating for less intestinal tissue, a high intestinal permeability that permits passive absorption might be less selective than a carrier-mediated system for nutrient absorption and might permit toxins to be absorbed from plant and animal material in the intestinal lumen.
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spelling pubmed-21739422008-01-09 Paracellular Absorption: A Bat Breaks the Mammal Paradigm Caviedes-Vidal, Enrique Karasov, William H. Chediack, Juan Gabriel Fasulo, Verónica Cruz-Neto, Ariovaldo P. Otani, Lye PLoS One Research Article Bats tend to have less intestinal tissue than comparably sized nonflying mammals. The corresponding reduction in intestinal volume and hence mass of digesta carried is advantageous because the costs of flight increase with load carried and because take-off and maneuverability are diminished at heavier masses. Water soluble compounds, such as glucose and amino acids, are absorbed in the small intestine mainly via two pathways, the transporter-mediated transcellular and the passive, paracellular pathways. Using the microchiropteran bat Artibeus literatus (mean mass 80.6±3.7 g), we tested the predictions that absorption of water-soluble compounds that are not actively transported would be extensive as a compensatory mechanism for relatively less intestinal tissue, and would decline with increasing molecular mass in accord with sieve-like paracellular absorption. Using a standard pharmacokinetic technique, we fed, or injected intraperitonealy the metabolically inert carbohydrates L-rhamnose (molecular mass = 164 Da) and cellobiose (molecular mass = 342 Da) which are absorbed only by paracellular transport, and 3-O-methyl-D-glucose (3OMD-glucose) which is absorbed via both mediated (active) and paracellular transport. As predicted, the bioavailability of paracellular probes declined with increasing molecular mass (rhamnose, 90±11%; cellobiose, 10±3%, n = 8) and was significantly higher in bats than has been reported for laboratory rats and other mammals. In addition, absorption of 3OMD-glucose was high (96±11%). We estimated that the bats rely on passive, paracellular absorption for more than 70% of their total glucose absorption, much more than in non-flying mammals. Although possibly compensating for less intestinal tissue, a high intestinal permeability that permits passive absorption might be less selective than a carrier-mediated system for nutrient absorption and might permit toxins to be absorbed from plant and animal material in the intestinal lumen. Public Library of Science 2008-01-09 /pmc/articles/PMC2173942/ /pubmed/18183305 http://dx.doi.org/10.1371/journal.pone.0001425 Text en Caviedes-Vidal et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Caviedes-Vidal, Enrique
Karasov, William H.
Chediack, Juan Gabriel
Fasulo, Verónica
Cruz-Neto, Ariovaldo P.
Otani, Lye
Paracellular Absorption: A Bat Breaks the Mammal Paradigm
title Paracellular Absorption: A Bat Breaks the Mammal Paradigm
title_full Paracellular Absorption: A Bat Breaks the Mammal Paradigm
title_fullStr Paracellular Absorption: A Bat Breaks the Mammal Paradigm
title_full_unstemmed Paracellular Absorption: A Bat Breaks the Mammal Paradigm
title_short Paracellular Absorption: A Bat Breaks the Mammal Paradigm
title_sort paracellular absorption: a bat breaks the mammal paradigm
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2173942/
https://www.ncbi.nlm.nih.gov/pubmed/18183305
http://dx.doi.org/10.1371/journal.pone.0001425
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