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Published on: February 3, 2012
Mutations in kelch-like 3 and cullin 3 cause hypertension and electrolyte abnormalities
Lynn M Boyden1, Murim Choi, Keith A Choate
1Department of Genetics and Howard Hughes Medical Institute, Yale University School of Medicine, New Haven, Connecticut 06510, USA.
Insights
Mutations in KLHL3 or CUL3 genes cause Pseudohypoaldosteronism type II (PHAII), a hypertension syndrome. These genes are crucial for blood pressure and electrolyte balance, with disease features reversed by thiazide diuretics.
Area of Science:
- Genetics
- Nephrology
- Molecular Biology
Background:
- Hypertension is a major cardiovascular disease risk factor.
- Pseudohypoaldosteronism type II (PHAII) is a rare genetic syndrome causing hypertension, hyperkalemia, and metabolic acidosis.
- PHAII offers insights into renal salt and electrolyte homeostasis.
Purpose of the Study:
- To identify the genetic causes of PHAII.
- To elucidate the physiological mechanisms underlying PHAII.
- To explore the role of KLHL3 and CUL3 in blood pressure regulation.
Main Methods:
- Exome sequencing was used to identify mutations in PHAII patients.
- Analysis of KLHL3 and CUL3 gene mutations and their inheritance patterns.
- Investigated the function of KLHL3 and CUL3 in E3 ligase complexes.
- Examined the expression of KLHL3 and CUL3 in the kidney.
Main Results:
- Mutations in KLHL3 or CUL3 were identified in 41 PHAII families.
- KLHL3 mutations can be recessive or dominant; CUL3 mutations are dominant and often de novo.
- Both KLHL3 and CUL3 mutations disrupt ubiquitination processes.
- Disease symptoms were ameliorated by thiazide diuretics, implicating the Na-Cl cotransporter.
Conclusions:
- KLHL3 and CUL3 are critical for maintaining blood pressure, potassium, and pH homeostasis.
- Mutations in KLHL3 and CUL3 cause PHAII through mechanisms involving renal salt reabsorption.
- Exome sequencing is effective for identifying disease genes in complex genetic disorders.
Abstract:
Hypertension affects one billion people and is a principal reversible risk factor for cardiovascular disease. Pseudohypoaldosteronism type II (PHAII), a rare Mendelian syndrome featuring hypertension, hyperkalaemia and metabolic acidosis, has revealed previously unrecognized physiology orchestrating the balance between renal salt reabsorption and K(+) and H(+) excretion. Here we used exome sequencing to identify mutations in kelch-like 3 (KLHL3) or cullin 3 (CUL3) in PHAII patients from 41 unrelated families. KLHL3 mutations are either recessive or dominant, whereas CUL3 mutations are dominant and predominantly de novo. CUL3 and BTB-domain-containing kelch proteins such as KLHL3 are components of cullin-RING E3 ligase complexes that ubiquitinate substrates bound to kelch propeller domains. Dominant KLHL3 mutations are clustered in short segments within the kelch propeller and BTB domains implicated in substrate and cullin binding, respectively. Diverse CUL3 mutations all result in skipping of exon 9, producing an in-frame deletion. Because dominant KLHL3 and CUL3 mutations both phenocopy recessive loss-of-function KLHL3 mutations, they may abrogate ubiquitination of KLHL3 substrates. Disease features are reversed by thiazide diuretics, which inhibit the Na-Cl cotransporter in the distal nephron of the kidney; KLHL3 and CUL3 are expressed in this location, suggesting a mechanistic link between KLHL3 and CUL3 mutations, increased Na-Cl reabsorption, and disease pathogenesis. These findings demonstrate the utility of exome sequencing in disease gene identification despite the combined complexities of locus heterogeneity, mixed models of transmission and frequent de novo mutation, and establish a fundamental role for KLHL3 and CUL3 in blood pressure, K(+) and pH homeostasis.
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