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Na(+)-Coupled Nutrient Cotransport Induced Luminal Negative Potential and Claudin-15 Play an Important Role in Paracellular Na(+) Recycling in Mouse Small Intestine

Many nutrients are absorbed via Na(+) cotransport systems, and therefore it is predicted that nutrient absorption mechanisms require a large amount of luminal Na(+). It is thought that Na(+) diffuses back into the lumen via paracellular pathways to support Na(+) cotransport absorption. However, dire...

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Autores principales: Nakayama, Michiko, Ishizuka, Noriko, Hempstock, Wendy, Ikari, Akira, Hayashi, Hisayoshi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7013606/
https://www.ncbi.nlm.nih.gov/pubmed/31936130
http://dx.doi.org/10.3390/ijms21020376
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author Nakayama, Michiko
Ishizuka, Noriko
Hempstock, Wendy
Ikari, Akira
Hayashi, Hisayoshi
author_facet Nakayama, Michiko
Ishizuka, Noriko
Hempstock, Wendy
Ikari, Akira
Hayashi, Hisayoshi
author_sort Nakayama, Michiko
collection PubMed
description Many nutrients are absorbed via Na(+) cotransport systems, and therefore it is predicted that nutrient absorption mechanisms require a large amount of luminal Na(+). It is thought that Na(+) diffuses back into the lumen via paracellular pathways to support Na(+) cotransport absorption. However, direct experimental evidence in support of this mechanism has not been shown. To elucidate this, we took advantage of claudin-15 deficient (cldn15(−/−)) mice, which have been shown to have decreased paracellular Na(+) permeability. We measured glucose-induced currents (ΔI(sc)) under open- and short-circuit conditions and simultaneously measured changes in unidirectional (22)Na(+) fluxes (ΔJ(Na)) in Ussing chambers. Under short-circuit conditions, application of glucose resulted in an increase in ΔI(sc) and unidirectional mucosal to serosal (22)Na(+) (∆J(Na)(MS)) flux in both wild-type and cldn15(−/−) mice. However, under open-circuit conditions, ΔI(sc) was observed but ∆J(Na)(MS) was strongly inhibited in wild-type but not in cldn15(−/−) mice. In addition, in the duodenum of mice treated with cholera toxin, paracellular Na(+) conductance was decreased and glucose-induced ∆J(Na)(MS) increment was observed under open-circuit conditions. We concluded that the Na(+) which is absorbed by Na(+)-dependent glucose cotransport is recycled back into the lumen via paracellular Na(+) conductance through claudin-15, which is driven by Na(+) cotransport induced luminal negativity.
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spelling pubmed-70136062020-03-09 Na(+)-Coupled Nutrient Cotransport Induced Luminal Negative Potential and Claudin-15 Play an Important Role in Paracellular Na(+) Recycling in Mouse Small Intestine Nakayama, Michiko Ishizuka, Noriko Hempstock, Wendy Ikari, Akira Hayashi, Hisayoshi Int J Mol Sci Article Many nutrients are absorbed via Na(+) cotransport systems, and therefore it is predicted that nutrient absorption mechanisms require a large amount of luminal Na(+). It is thought that Na(+) diffuses back into the lumen via paracellular pathways to support Na(+) cotransport absorption. However, direct experimental evidence in support of this mechanism has not been shown. To elucidate this, we took advantage of claudin-15 deficient (cldn15(−/−)) mice, which have been shown to have decreased paracellular Na(+) permeability. We measured glucose-induced currents (ΔI(sc)) under open- and short-circuit conditions and simultaneously measured changes in unidirectional (22)Na(+) fluxes (ΔJ(Na)) in Ussing chambers. Under short-circuit conditions, application of glucose resulted in an increase in ΔI(sc) and unidirectional mucosal to serosal (22)Na(+) (∆J(Na)(MS)) flux in both wild-type and cldn15(−/−) mice. However, under open-circuit conditions, ΔI(sc) was observed but ∆J(Na)(MS) was strongly inhibited in wild-type but not in cldn15(−/−) mice. In addition, in the duodenum of mice treated with cholera toxin, paracellular Na(+) conductance was decreased and glucose-induced ∆J(Na)(MS) increment was observed under open-circuit conditions. We concluded that the Na(+) which is absorbed by Na(+)-dependent glucose cotransport is recycled back into the lumen via paracellular Na(+) conductance through claudin-15, which is driven by Na(+) cotransport induced luminal negativity. MDPI 2020-01-07 /pmc/articles/PMC7013606/ /pubmed/31936130 http://dx.doi.org/10.3390/ijms21020376 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Nakayama, Michiko
Ishizuka, Noriko
Hempstock, Wendy
Ikari, Akira
Hayashi, Hisayoshi
Na(+)-Coupled Nutrient Cotransport Induced Luminal Negative Potential and Claudin-15 Play an Important Role in Paracellular Na(+) Recycling in Mouse Small Intestine
title Na(+)-Coupled Nutrient Cotransport Induced Luminal Negative Potential and Claudin-15 Play an Important Role in Paracellular Na(+) Recycling in Mouse Small Intestine
title_full Na(+)-Coupled Nutrient Cotransport Induced Luminal Negative Potential and Claudin-15 Play an Important Role in Paracellular Na(+) Recycling in Mouse Small Intestine
title_fullStr Na(+)-Coupled Nutrient Cotransport Induced Luminal Negative Potential and Claudin-15 Play an Important Role in Paracellular Na(+) Recycling in Mouse Small Intestine
title_full_unstemmed Na(+)-Coupled Nutrient Cotransport Induced Luminal Negative Potential and Claudin-15 Play an Important Role in Paracellular Na(+) Recycling in Mouse Small Intestine
title_short Na(+)-Coupled Nutrient Cotransport Induced Luminal Negative Potential and Claudin-15 Play an Important Role in Paracellular Na(+) Recycling in Mouse Small Intestine
title_sort na(+)-coupled nutrient cotransport induced luminal negative potential and claudin-15 play an important role in paracellular na(+) recycling in mouse small intestine
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7013606/
https://www.ncbi.nlm.nih.gov/pubmed/31936130
http://dx.doi.org/10.3390/ijms21020376
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