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Activation of Na(+)-permeant Cation Channel by Stretch and Cyclic AMP-dependent Phosphorylation in Renal Epithelial A6 Cells

It is currently believed that a nonselective cation (NSC) channel, which responds to arginine vasotocin (an antidiuretic hormone) and stretch, regulates Na(+) absorption in the distal nephron. However, the mechanisms of regulation of this channel remain incompletely characterized. To study the mecha...

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Detalles Bibliográficos
Autores principales: Marunaka, Yoshinori, Shintani, Yutaka, Downey, Gregory P., Niisato, Naomi
Formato: Texto
Lenguaje:English
Publicado: The Rockefeller University Press 1997
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2229362/
https://www.ncbi.nlm.nih.gov/pubmed/9276757
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author Marunaka, Yoshinori
Shintani, Yutaka
Downey, Gregory P.
Niisato, Naomi
author_facet Marunaka, Yoshinori
Shintani, Yutaka
Downey, Gregory P.
Niisato, Naomi
author_sort Marunaka, Yoshinori
collection PubMed
description It is currently believed that a nonselective cation (NSC) channel, which responds to arginine vasotocin (an antidiuretic hormone) and stretch, regulates Na(+) absorption in the distal nephron. However, the mechanisms of regulation of this channel remain incompletely characterized. To study the mechanisms of regulation of this channel, we used renal epithelial cells (A6) cultured on permeable supports. The apical membrane of confluent monolayers of A6 cells expressed a 29-pS channel, which was activated by stretch or by 3-isobutyl-1-methylxanthine (IBMX), an inhibitor of phosphodiesterase. This channel had an identical selectivity for Na(+), K(+), Li(+), and Cs(+), but little selectivity for Ca(2+) (P(Ca)/P(Na) < 0.005) or Cl(−) (P(Cl)/P(Na) < 0.01), identifying it as an NSC channel. Stretch had no additional effects on the open probability (P (o)) of the IBMX-activated channel. This channel had one open (“O”) and two closed (short “C (S)” and long “C (L)”) states under basal, stretch-, or IBMX-stimulated conditions. Both stretch and IBMX increased the P (o) of the channel without any detectable changes in the mean open or closed times. These observations led us to the conclusion that a kinetic model “C (L )↔ C (S )↔ O” was the most suitable among three possible linear models. According to this model, IBMX or stretch would decrease the leaving rate of the channel for C (L) from C (S), resulting in an increase in P (o). Cytochalasin D pretreatment abolished the response to stretch or IBMX without altering the basal activity. H89 (an inhibitor of cAMP-dependent protein kinase) completely abolished the response to both stretch and IBMX, but, unlike cytochalasin D, also diminished the basal activity. We conclude that: (a) the functional properties of the cAMP-activated NSC channel are similar to those of the stretch-activated one, (b) the actin cytoskeleton plays a crucial role in the activation of the NSC channel induced by stretch and cAMP, and (c) the basal activity of the NSC channel is maintained by PKA-dependent phosphorylation but is not dependent on actin microfilaments.
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spelling pubmed-22293622008-04-22 Activation of Na(+)-permeant Cation Channel by Stretch and Cyclic AMP-dependent Phosphorylation in Renal Epithelial A6 Cells Marunaka, Yoshinori Shintani, Yutaka Downey, Gregory P. Niisato, Naomi J Gen Physiol Article It is currently believed that a nonselective cation (NSC) channel, which responds to arginine vasotocin (an antidiuretic hormone) and stretch, regulates Na(+) absorption in the distal nephron. However, the mechanisms of regulation of this channel remain incompletely characterized. To study the mechanisms of regulation of this channel, we used renal epithelial cells (A6) cultured on permeable supports. The apical membrane of confluent monolayers of A6 cells expressed a 29-pS channel, which was activated by stretch or by 3-isobutyl-1-methylxanthine (IBMX), an inhibitor of phosphodiesterase. This channel had an identical selectivity for Na(+), K(+), Li(+), and Cs(+), but little selectivity for Ca(2+) (P(Ca)/P(Na) < 0.005) or Cl(−) (P(Cl)/P(Na) < 0.01), identifying it as an NSC channel. Stretch had no additional effects on the open probability (P (o)) of the IBMX-activated channel. This channel had one open (“O”) and two closed (short “C (S)” and long “C (L)”) states under basal, stretch-, or IBMX-stimulated conditions. Both stretch and IBMX increased the P (o) of the channel without any detectable changes in the mean open or closed times. These observations led us to the conclusion that a kinetic model “C (L )↔ C (S )↔ O” was the most suitable among three possible linear models. According to this model, IBMX or stretch would decrease the leaving rate of the channel for C (L) from C (S), resulting in an increase in P (o). Cytochalasin D pretreatment abolished the response to stretch or IBMX without altering the basal activity. H89 (an inhibitor of cAMP-dependent protein kinase) completely abolished the response to both stretch and IBMX, but, unlike cytochalasin D, also diminished the basal activity. We conclude that: (a) the functional properties of the cAMP-activated NSC channel are similar to those of the stretch-activated one, (b) the actin cytoskeleton plays a crucial role in the activation of the NSC channel induced by stretch and cAMP, and (c) the basal activity of the NSC channel is maintained by PKA-dependent phosphorylation but is not dependent on actin microfilaments. The Rockefeller University Press 1997-09-01 /pmc/articles/PMC2229362/ /pubmed/9276757 Text en This article is distributed under the terms of an Attribution–Noncommercial–Share Alike–No Mirror Sites license for the first six months after the publication date (see http://www.rupress.org/terms). After six months it is available under a Creative Commons License (Attribution–Noncommercial–Share Alike 4.0 Unported license, as described at http://creativecommons.org/licenses/by-nc-sa/4.0/).
spellingShingle Article
Marunaka, Yoshinori
Shintani, Yutaka
Downey, Gregory P.
Niisato, Naomi
Activation of Na(+)-permeant Cation Channel by Stretch and Cyclic AMP-dependent Phosphorylation in Renal Epithelial A6 Cells
title Activation of Na(+)-permeant Cation Channel by Stretch and Cyclic AMP-dependent Phosphorylation in Renal Epithelial A6 Cells
title_full Activation of Na(+)-permeant Cation Channel by Stretch and Cyclic AMP-dependent Phosphorylation in Renal Epithelial A6 Cells
title_fullStr Activation of Na(+)-permeant Cation Channel by Stretch and Cyclic AMP-dependent Phosphorylation in Renal Epithelial A6 Cells
title_full_unstemmed Activation of Na(+)-permeant Cation Channel by Stretch and Cyclic AMP-dependent Phosphorylation in Renal Epithelial A6 Cells
title_short Activation of Na(+)-permeant Cation Channel by Stretch and Cyclic AMP-dependent Phosphorylation in Renal Epithelial A6 Cells
title_sort activation of na(+)-permeant cation channel by stretch and cyclic amp-dependent phosphorylation in renal epithelial a6 cells
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2229362/
https://www.ncbi.nlm.nih.gov/pubmed/9276757
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