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  4. WNK3 and WNK4 exhibit opposite sensitivity with respect to cell volume and intracellular chloride concentration
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WNK3 and WNK4 exhibit opposite sensitivity with respect to cell volume and intracellular chloride concentration

Journal
American Journal of Physiology-Cell Physiology
ISSN
0363-6143
1522-1563
Date Issued
2020
Author(s)
Carrillo-Pérez, Diego Luis
Mercado, Adriana
Moreno, Erika
Castañeda-Bueno, María
Elisa Hernández-Mercado
Vázquez, Norma
Gamba, Gerardo
Type
Resource Types::text::journal::journal article
DOI
10.1152/ajpcell.00488.2019
URL
https://scripta.up.edu.mx/handle/20.500.12552/2125
Abstract
Cation-coupled chloride cotransporters (CCC) play a role in modulating intracellular chloride concentration ([Cl-]i) and cell volume. Cell shrinkage and cell swelling are accompanied by an increase or decrease in [Cl-]i, respectively. Cell shrinkage and a decrease in [Cl-]i increase the activity of NKCCs (Na-K-Cl cotransporters: NKCC1, NKCC2, and Na-Cl) and inhibit the activity of KCCs (K-Cl cotransporters: KCC1 to KCC4), wheras cell swelling and an increase in [Cl-]i activate KCCs and inhibit NKCCs; thus, it is unlikely that the same kinase is responsible for both effects. WNK1 and WNK4 are chloride-sensitive kinases that modulate the activity of CCC in response to changes in [Cl-]i. Here, we showed that WNK3, another member of the serine-threonine kinase WNK family with known effects on CCC, is not sensitive to [Cl-]i but can be regulated by changes in extracellular tonicity. In contrast, WNK4 is highly sensitive to [Cl-]i but is not regulated by changes in cell volume. The activity of WNK3 toward NaCl cotransporter is not affected by eliminating the chloride-binding site of WNK3, further confirming that the kinase is not sensitive to chloride. Chimeric WNK3/WNK4 proteins were produced, and analysis of the chimeras suggests that sequences within the WNK’s carboxy-terminal end may modulate the chloride affinity. We propose that WNK3 is a cell volume-sensitive kinase that translates changes in cell volume into phosphorylation of CCC. Copyright © 2020 the American Physiological Society

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