| Literature DB >> 32790646 |
Hélène Louis-Dit-Picard1, Ilektra Kouranti1, Chloé Rafael1,2,3, Irmine Loisel-Ferreira1, Maria Chavez-Canales1,4, Waed Abdel-Khalek1, Eduardo R Argaiz5, Stéphanie Baron1,6, Sarah Vacle7, Tiffany Migeon2, Richard Coleman8, Marcio Do Cruzeiro9, Marguerite Hureaux1,10, Nirubiah Thurairajasingam10, Stéphane Decramer11, Xavier Girerd12, Kevin O'Shaugnessy13, Paolo Mulatero14, Gwenaëlle Roussey15, Ivan Tack16, Robert Unwin17, Rosa Vargas-Poussou10, Olivier Staub7, Richard Grimm18, Paul A Welling18, Gerardo Gamba5, Eric Clauser1, Juliette Hadchouel1,2,3, Xavier Jeunemaitre1,10.
Abstract
Gain-of-function mutations in with no lysine (K) 1 (WNK1) and WNK4 genes are responsible for familial hyperkalemic hypertension (FHHt), a rare, inherited disorder characterized by arterial hypertension and hyperkalemia with metabolic acidosis. More recently, FHHt-causing mutations in the Kelch-like 3-Cullin 3 (KLHL3-CUL3) E3 ubiquitin ligase complex have shed light on the importance of WNK's cellular degradation on renal ion transport. Using full exome sequencing for a 4-generation family and then targeted sequencing in other suspected cases, we have identified new missense variants in the WNK1 gene clustering in the short conserved acidic motif known to interact with the KLHL3-CUL3 ubiquitin complex. Affected subjects had an early onset of a hyperkalemic hyperchloremic phenotype, but normal blood pressure values"Functional experiments in Xenopus laevis oocytes and HEK293T cells demonstrated that these mutations strongly decrease the ubiquitination of the kidney-specific isoform KS-WNK1 by the KLHL3-CUL3 complex rather than the long ubiquitous catalytically active L-WNK1 isoform. A corresponding CRISPR/Cas9 engineered mouse model recapitulated both the clinical and biological phenotypes. Renal investigations showed increased activation of the Ste20 proline alanine-rich kinase-Na+-Cl- cotransporter (SPAK-NCC) phosphorylation cascade, associated with impaired ROMK apical expression in the distal part of the renal tubule. Together, these new WNK1 genetic variants highlight the importance of the KS-WNK1 isoform abundance on potassium homeostasis.Entities:
Keywords: Epithelial transport of ions and water; Genetic diseases; Genetics; Nephrology; Protein kinases
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Year: 2020 PMID: 32790646 PMCID: PMC7685730 DOI: 10.1172/JCI94171
Source DB: PubMed Journal: J Clin Invest ISSN: 0021-9738 Impact factor: 19.456