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MST3 Involvement in Na(+) and K(+) Homeostasis with Increasing Dietary Potassium Intake
K(+) loading inhibits NKCC2 (Na-K-Cl cotransporter) and NCC (Na-Cl cotransporter) in the early distal tubules, resulting in Na(+) delivery to the late distal convoluted tubules (DCTs). In the DCTs, Na(+) entry through ENaC (epithelial Na channel) drives K(+) secretion through ROMK (renal outer medul...
Autores principales: | , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
MDPI
2021
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7863938/ https://www.ncbi.nlm.nih.gov/pubmed/33498219 http://dx.doi.org/10.3390/ijms22030999 |
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author | Chan, Chee-Hong Wu, Sheng-Nan Bao, Bo-Ying Li, Houng-Wei Lu, Te-Ling |
author_facet | Chan, Chee-Hong Wu, Sheng-Nan Bao, Bo-Ying Li, Houng-Wei Lu, Te-Ling |
author_sort | Chan, Chee-Hong |
collection | PubMed |
description | K(+) loading inhibits NKCC2 (Na-K-Cl cotransporter) and NCC (Na-Cl cotransporter) in the early distal tubules, resulting in Na(+) delivery to the late distal convoluted tubules (DCTs). In the DCTs, Na(+) entry through ENaC (epithelial Na channel) drives K(+) secretion through ROMK (renal outer medullary potassium channel). WNK4 (with-no-lysine 4) regulates the NCC/NKCC2 through SAPK (Ste20-related proline-alanine-rich kinase)/OSR1 (oxidative stress responsive). K(+) loading increases intracellular Cl(−), which binds to the WNK4, thereby inhibiting autophosphorylation and downstream signals. Acute K(+) loading-deactivated NCC was not observed in Cl(−)-insensitive WNK4 mice, indicating that WNK4 was involved in K(+) loading-inhibited NCC activity. However, chronic K(+) loading deactivated NCC in Cl(−)-insensitive WNK4 mice, indicating that other mechanisms may be involved. We previously reported that mammalian Ste20-like protein kinase 3 (MST3/STK24) was expressed mainly in the medullary TAL (thick ascending tubule) and at lower levels in the DCTs. MST3(−/−) mice exhibited higher ENaC activity, causing hypernatremia and hypertension. To investigate MST3 function in maintaining Na(+)/K(+) homeostasis in kidneys, mice were fed diets containing various concentrations of Na(+) and K(+). The 2% KCl diets induced less MST3 expression in MST3(−/−) mice than that in wild-type (WT) mice. The MST3(−/−) mice had higher WNK4, NKCC2-S130 phosphorylation, and ENaC expression, resulting in lower urinary Na(+) and K(+) excretion than those of WT mice. Lower urinary Na(+) excretion was associated with elevated plasma [Na(+)] and hypertension. These results suggest that MST3 maintains Na(+)/K(+) homeostasis in response to K(+) loading by regulation of WNK4 expression and NKCC2 and ENaC activity. |
format | Online Article Text |
id | pubmed-7863938 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2021 |
publisher | MDPI |
record_format | MEDLINE/PubMed |
spelling | pubmed-78639382021-02-06 MST3 Involvement in Na(+) and K(+) Homeostasis with Increasing Dietary Potassium Intake Chan, Chee-Hong Wu, Sheng-Nan Bao, Bo-Ying Li, Houng-Wei Lu, Te-Ling Int J Mol Sci Article K(+) loading inhibits NKCC2 (Na-K-Cl cotransporter) and NCC (Na-Cl cotransporter) in the early distal tubules, resulting in Na(+) delivery to the late distal convoluted tubules (DCTs). In the DCTs, Na(+) entry through ENaC (epithelial Na channel) drives K(+) secretion through ROMK (renal outer medullary potassium channel). WNK4 (with-no-lysine 4) regulates the NCC/NKCC2 through SAPK (Ste20-related proline-alanine-rich kinase)/OSR1 (oxidative stress responsive). K(+) loading increases intracellular Cl(−), which binds to the WNK4, thereby inhibiting autophosphorylation and downstream signals. Acute K(+) loading-deactivated NCC was not observed in Cl(−)-insensitive WNK4 mice, indicating that WNK4 was involved in K(+) loading-inhibited NCC activity. However, chronic K(+) loading deactivated NCC in Cl(−)-insensitive WNK4 mice, indicating that other mechanisms may be involved. We previously reported that mammalian Ste20-like protein kinase 3 (MST3/STK24) was expressed mainly in the medullary TAL (thick ascending tubule) and at lower levels in the DCTs. MST3(−/−) mice exhibited higher ENaC activity, causing hypernatremia and hypertension. To investigate MST3 function in maintaining Na(+)/K(+) homeostasis in kidneys, mice were fed diets containing various concentrations of Na(+) and K(+). The 2% KCl diets induced less MST3 expression in MST3(−/−) mice than that in wild-type (WT) mice. The MST3(−/−) mice had higher WNK4, NKCC2-S130 phosphorylation, and ENaC expression, resulting in lower urinary Na(+) and K(+) excretion than those of WT mice. Lower urinary Na(+) excretion was associated with elevated plasma [Na(+)] and hypertension. These results suggest that MST3 maintains Na(+)/K(+) homeostasis in response to K(+) loading by regulation of WNK4 expression and NKCC2 and ENaC activity. MDPI 2021-01-20 /pmc/articles/PMC7863938/ /pubmed/33498219 http://dx.doi.org/10.3390/ijms22030999 Text en © 2021 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 Chan, Chee-Hong Wu, Sheng-Nan Bao, Bo-Ying Li, Houng-Wei Lu, Te-Ling MST3 Involvement in Na(+) and K(+) Homeostasis with Increasing Dietary Potassium Intake |
title | MST3 Involvement in Na(+) and K(+) Homeostasis with Increasing Dietary Potassium Intake |
title_full | MST3 Involvement in Na(+) and K(+) Homeostasis with Increasing Dietary Potassium Intake |
title_fullStr | MST3 Involvement in Na(+) and K(+) Homeostasis with Increasing Dietary Potassium Intake |
title_full_unstemmed | MST3 Involvement in Na(+) and K(+) Homeostasis with Increasing Dietary Potassium Intake |
title_short | MST3 Involvement in Na(+) and K(+) Homeostasis with Increasing Dietary Potassium Intake |
title_sort | mst3 involvement in na(+) and k(+) homeostasis with increasing dietary potassium intake |
topic | Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7863938/ https://www.ncbi.nlm.nih.gov/pubmed/33498219 http://dx.doi.org/10.3390/ijms22030999 |
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