| Literature DB >> 31736353 |
Martin N Thomson1, Catherina A Cuevas2, Tim M Bewarder1, Carsten Dittmayer1, Lauren N Miller2, Jinge Si2, Ryan J Cornelius2, Xiao-Tong Su2, Chao-Ling Yang2,3, James A McCormick2, Juliette Hadchouel4, David H Ellison2,3, Sebastian Bachmann1, Kerim Mutig1,5.
Abstract
K+ deficiency stimulates renal salt reuptake via the Na+-Cl- cotransporter (NCC) of the distal convoluted tubule (DCT), thereby reducing K+ losses in downstream nephron segments while increasing NaCl retention and blood pressure. NCC activation is mediated by a kinase cascade involving with no lysine (WNK) kinases upstream of Ste20-related proline-alanine-rich kinase (SPAK) and oxidative stress-responsive kinase-1 (OSR1). In K+ deficiency, WNKs and SPAK/OSR1 concentrate in spherical cytoplasmic domains in the DCT termed "WNK bodies," the significance of which is undetermined. By feeding diets of varying salt and K+ content to mice and using genetically engineered mouse lines, we aimed to clarify whether WNK bodies contribute to WNK-SPAK/OSR1-NCC signaling. Phosphorylated SPAK/OSR1 was present both at the apical membrane and in WNK bodies within 12 h of dietary K+ deprivation, and it was promptly suppressed by K+ loading. In WNK4-deficient mice, however, larger WNK bodies formed, containing unphosphorylated WNK1, SPAK, and OSR1. This suggests that WNK4 is the primary active WNK isoform in WNK bodies and catalyzes SPAK/OSR1 phosphorylation therein. We further examined mice carrying a kidney-specific deletion of the basolateral K+ channel-forming protein Kir4.1, which is required for the DCT to sense plasma K+ concentration. These mice displayed remnant mosaic expression of Kir4.1 in the DCT, and upon K+ deprivation, WNK bodies developed only in Kir4.1-expressing cells. We postulate a model of DCT function in which NCC activity is modulated by plasma K+ concentration via WNK4-SPAK/OSR1 interactions within WNK bodies.Entities:
Keywords: Kir4.1; Na+-Cl− cotransporter; Ste20-related proline-alanine-rich kinase; WNK bodies; WNK4; distal convoluted tubule; oxidative stress-responsive kinase-1
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Year: 2019 PMID: 31736353 PMCID: PMC6985824 DOI: 10.1152/ajprenal.00232.2019
Source DB: PubMed Journal: Am J Physiol Renal Physiol ISSN: 1522-1466