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Published on: March 14, 2017
A Ca(2+)-sensing receptor mutation causes hypoparathyroidism by increasing receptor sensitivity to Ca2+ and maximal
E E Mancilla1, F De Luca, K Ray
1Developmental Endocrinology Branch, National Institute of Child Health and Human Development, National Institutes of Health, Bethesda, Maryland 20892, USA.
Abstract:
Activating mutations of the Ca(2+)-sensing receptor (CaR) gene cause autosomal dominant hypoparathyroidism. Functional expression studies have been reported for several mutations, but have produced conflicting results. Thus, the mechanism by which these mutations activate the receptor is unclear. We describe here a new family with autosomal dominant hypoparathyroidism. The mother and three daughters experienced muscle spasms and/or seizures from early childhood. They were treated with oral calcium and vitamin D analogs, and all four patients developed hypercalciuria, nephrocalcinosis, and renal insufficiency. In this family, we identified a heterozygous missense mutation (F612S) involving the extracellular region of the CaR. The mutation cosegregated with disease. It was not present in 50 normal control individuals. We used site-directed mutagenesis to introduce this mutation into the CaR cDNA, and then expressed the mutant receptor in human embryonic kidney (HEK)-293 cells. In these cells, the accumulation of inositol phosphates was measured as a function of extracellular Ca2+ concentration. Compared with the wild-type receptor, the mutant receptor showed a left-shift in the concentration-response curve and an increase in the maximal response to high Ca2+ concentration. These effects did not appear to be mediated by changes in levels of receptor expression, as judged by ELISA, or by changes in receptor glycosylation, as judged by Western analysis. We conclude that this CaR mutation causes hypoparathyroidism by a dual increase in receptor sensitivity to extracellular Ca2+ and maximal signal transduction capacity.
Insights
Activating mutations in the calcium-sensing receptor (CaR) cause autosomal dominant hypoparathyroidism. A novel F612S mutation increases CaR sensitivity and signaling, clarifying disease mechanisms.
Area of Science:
- Endocrinology
- Genetics
- Molecular Biology
Background:
- Activating mutations in the calcium-sensing receptor (CaR) gene lead to autosomal dominant hypoparathyroidism.
- Previous functional studies of CaR mutations have yielded conflicting results, leaving the activation mechanism unclear.
Purpose of the Study:
- To investigate the mechanism of a novel CaR mutation causing autosomal dominant hypoparathyroidism in a multi-generational family.
- To characterize the functional consequences of the F612S mutation on CaR activity.
Main Methods:
- Identified a heterozygous missense mutation (F612S) in the CaR gene in affected family members.
- Used site-directed mutagenesis to introduce the F612S mutation into CaR cDNA.
- Expressed wild-type and mutant CaR in HEK-293 cells and measured inositol phosphate accumulation in response to extracellular calcium.
Main Results:
- The F612S CaR mutation cosegregated with autosomal dominant hypoparathyroidism in the family.
- Mutant CaR exhibited a left-shifted concentration-response curve and increased maximal response to calcium compared to wild-type.
- These functional changes were not due to altered receptor expression or glycosylation.
Conclusions:
- The F612S CaR mutation causes hypoparathyroidism through a dual mechanism.
- This mechanism involves increased receptor sensitivity to extracellular calcium and enhanced maximal signal transduction capacity.
- This finding clarifies the molecular basis of this specific form of autosomal dominant hypoparathyroidism.
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