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  3. Mice carrying ubiquitin-specific protease 2 (Usp2) gene inactivation maintain normal sodium balance and blood pressure

Mice carrying ubiquitin-specific protease 2 (Usp2) gene inactivation maintain normal sodium balance and blood pressure

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DOI
10.7892/boris.43788
Publisher DOI
10.1152/ajprenal.00012.2013
PubMed ID
23552861
Abstract
Ubiquitylation plays an important role in the control of Na⁺ homeostasis by the kidney. It is well established that the epithelial Na⁺ channel ENaC is regulated by the ubiquitin-protein ligase NEDD4-2, limiting ENaC cell surface expression and activity. Ubiquitylation can be reversed by the action of deubiquitylating enzymes (DUBs). One such DUB, USP2-45, was identified previously as an aldosterone-induced protein in the kidney and is also a circadian output gene. In heterologous expression systems, USP2-45 binds to ENaC, deubiquitylates it, and enhances channel density and activity at the cell surface. Because the role of USP2-45 in renal Na⁺ transport had not been studied in vivo, we investigated here the effect of Usp2 gene inactivation in this process. We demonstrate first that USP2-45 protein has a rhythmic expression with a peak at ZT12. Usp2-KO mice did not show any differences from wild-type littermates with respect to the diurnal control of Na⁺ or K⁺ urinary excretion and plasma levels either on a standard diet or after acute and chronic changes to low- and high-Na⁺ diets, respectively. Moreover, they had similar aldosterone levels on either a low- or high-Na⁺ diet. Blood pressure measurements using telemetry did not reveal variations compared with control mice. Usp2-KO mice did not display alterations in expression of genes involved in sodium homeostasis or the ubiquitin system, as evidenced by transcriptome analysis in the kidney. Our data suggest that USP2 does not play a primary role in the control of Na⁺ balance or blood pressure.
Date Issued
2013-07-01
Publication Type
Article
Subject(s)
600 Technology > 610 Medicine & health
Subjects
ENaC
•
blood pressure
•
circadian rhythm
•
deubiquitylation sodium transport
Language(s)
en
Author(s)
Pouly, Daniel
Debonneville, Anne
Ruffieux-Daidié, Dorothée
Maillard, Marc
Abriel, Hugues  
Departement Klinische Forschung, Forschungsgruppe Ionenkanalkrankheiten  
Loffing, Johannes
Staub, Olivier
Additional Credits
Departement Klinische Forschung, Forschungsgruppe Ionenkanalkrankheiten  
Journal
American journal of physiology - renal physiology
Publisher
American Physiological Society
ISSN
0363-6127
Access(Rights)
restricted
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