Role of WNK kinases in regulating tubular salt and potassium transport and in the development of hypertension
- 1 February 2005
- journal article
- review article
- Published by American Physiological Society in American Journal of Physiology-Renal Physiology
- Vol. 288 (2) , F245-F252
- https://doi.org/10.1152/ajprenal.00311.2004
Abstract
A recently discovered family of protein kinases is responsible for an autosomal-dominant disease known as Gordon's syndrome or pseudohypoaldosteronism type II (PHA-II) that features hyperkalemia and hyperchloremic metabolic acidosis, accompanied by hypertension and hypercalciuria. Four genes have been described in this kinase family, which has been named WNK, due to the absence of a key lysine in kinase subdomain II (with no K kinases). Two of these genes, WNK1 and WNK4 located in human chromosomes 12 and 17, respectively, are responsible for PHA-II. Immunohystochemical analysis revealed that WNK1 and WNK4 are predominantly expressed in the distal convoluted tubule and collecting duct. The physiological studies have shown that WNK4 downregulates the activity of ion transport pathways expressed in these nephron segments, such as the apical thiazide-sensitive Na+-Cl−cotransporter and apical secretory K+channel ROMK, as well as upregulates paracellular chloride transport and phosphorylation of tight junction proteins such as claudins. In addition, WNK4 downregulates other Cl−influx pathways such as the basolateral Na+-K+-2Cl−cotransporter and Cl−/HCO3−exchanger. WNK4 mutations behave as a loss of function for the Na+-Cl−cotransporter and a gain of function when it comes to ROMK and claudins. These dual effects of WNK4 mutations fit with proposed mechanisms for developing electrolyte abnormalities and hypertension in PHA-II and point to WNK4 as a multifunctional regulator of diverse ion transporters.Keywords
This publication has 50 references indexed in Scilit:
- Comparison of WNK4 and WNK1 kinase and inhibiting activitiesBiochemical and Biophysical Research Communications, 2004
- A molecular switch controlling renal sodium and potassium excretionNature Genetics, 2003
- Human Hypertension Caused by Mutations in WNK KinasesScience, 2001
- Semantic Dysfunction in Frontotemporal Lobar DegenerationDementia and Geriatric Cognitive Disorders, 1999
- Multilocus linkage of familial hyperkalaemia and hypertension, pseudohypoaldosteronism type II, to chromosomes 1q31-42 and 17p11-q21Nature Genetics, 1997
- Blockade of distal nephron sodium transport attenuates pressure natriuresis in dogs.Hypertension, 1994
- Syndrome of hypertension and hyperkalemia with normal glomerular filtration rate.Hypertension, 1986
- Mineralocorticoid-resistant renal hyperkalemia without salt wasting (type II pseudohypoaldosteronism): Role of increased renal chloride reabsorptionKidney International, 1981
- Hyperkalemia, acidosis, and short stature associated with a defect in renal potassium excretionThe Journal of Pediatrics, 1974
- Short stature, hyperkalemia and acidosis: A defect in renal transport of potassiumKidney International, 1973