Literature DB >> 19692483

Activation of the epithelial Na+ channel in the collecting duct by vasopressin contributes to water reabsorption.

Vladislav Bugaj1, Oleh Pochynyuk, James D Stockand.   

Abstract

We used patch-clamp electrophysiology on isolated, split-open murine collecting ducts (CD) to test the hypothesis that regulation of epithelial sodium channel (ENaC) activity is a physiologically important effect of vasopressin. Surprisingly, this has not been tested directly before. We ask whether vasopressin affects ENaC activity distinguishing between acute and chronic effects, as well as, parsing the cellular signaling pathway and molecular mechanism of regulation. In addition, we quantified possible synergistic regulation of ENaC by vasopressin and aldosterone associating this with a requirement for distal nephron Na+ reabsorption during water conservation vs. maintenance of Na+ balance. We find that vasopressin significantly increases ENaC activity within 2-3 min by increasing open probability (P(o)). This activation was dependent on adenylyl cyclase (AC) and PKA. Water restriction (18-24 h) and pretreatment of isolated CD with vasopressin (approximately 30 min) resulted in a similar increase in P(o). In addition, this also increased the number (N) of active ENaC in the apical membrane. Similar to P(o), increases in N were sensitive to inhibitors of AC. Stressing animals with water and salt restriction separately and jointly revealed an important effect of vasopressin: conservation of water and Na+ each independently increased ENaC activity and jointly had a synergistic effect on channel activity. These results demonstrate a quantitatively important action of vasopressin on ENaC suggesting that distal nephron Na+ reabsorption mediated by this channel contributes to maintenance of water reabsorption. In addition, our results support that the combined actions of vasopressin and aldosterone are required to achieve maximally activated ENaC.

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Year:  2009        PMID: 19692483      PMCID: PMC2781343          DOI: 10.1152/ajprenal.00371.2009

Source DB:  PubMed          Journal:  Am J Physiol Renal Physiol        ISSN: 1522-1466


  52 in total

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Authors:  R P Lifton; A G Gharavi; D S Geller
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2.  Electrophysiological studies in principal cells of rat cortical collecting tubules. ADH increases the apical membrane Na+-conductance.

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3.  Sodium transport by rat cortical collecting tubule. Effects of vasopressin and desoxycorticosterone.

Authors:  M C Reif; S L Troutman; J A Schafer
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4.  Effects of vasopressin and bradykinin on anion transport by the rat cortical collecting duct. Evidence for an electroneutral sodium chloride transport pathway.

Authors:  K Tomita; J J Pisano; M B Burg; M A Knepper
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5.  Vasopressin-mediated regulation of epithelial sodium channel abundance in rat kidney.

Authors:  C A Ecelbarger; G H Kim; J Terris; S Masilamani; C Mitchell; I Reyes; J G Verbalis; M A Knepper
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6.  Characterization of the ion transport responses to ADH in the MDCK-C7 cell line.

Authors:  T F Lahr; R D Record; D K Hoover; C L Hughes; B L Blazer-Yost
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Authors:  O Bonny; E Hummler
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8.  Interactions between ADH and prostaglandins in isolated erythrocyte-perfused rat kidney.

Authors:  W Lieberthal; M L Vasilevsky; C R Valeri; N G Levinsky
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9.  Sustained response to vasopressin in isolated rat cortical collecting tubule.

Authors:  M C Reif; S L Troutman; J A Schafer
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  44 in total

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9.  Clues to renal sodium retention.

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10.  Salt-dependent inhibition of epithelial Na+ channel-mediated sodium reabsorption in the aldosterone-sensitive distal nephron by bradykinin.

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