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[Calcimimetics, mechanisms of action and therapeutic applications]
P Ureña1, N Legoupil, M C de Vernejoul
1Service de néphrologie-dialyse, Clinique de l'Orangerie, Aubervilliers (93).
Abstract:
The extracellular calcium-sensing receptor (CaR) on the parathyroid cell surface negatively regulates secretion of parathyroid hormone (PTH). Its activation by small changes in the extracellular concentration of ionized calcium (ec[Ca2+]) decreases PTH secretion and secondarily bone turnover. CaR is an ideal target for compounds that may be developed to modulate its activity - activating calcimimetics and inhibiting calcilytics. Calcimimetics can amplify the sensitivity of the CaR to ec(Ca2+), thereby suppressing PTH levels and in turn reducing blood Ca++. They dose-dependently reduce the secretion of PTH in cultured parathyroid cells, in animal models and in humans. In uremic animals, these compounds prevent parathyroid cell hyperplasia when given at the onset of the disease and stop cell proliferation if they are administered afterwards, when the hyperplasia already exists. They normalize plasma PTH levels and bone remodeling. In uremic patients undergoing hemodialysis, calcimimetics reduce plasma PTH concentrations in the short (12 weeks) and long (2 years) terms. They also reduce serum levels of calcium-phosphorus product. Calcimimetics are therefore an alternative for the treatment of secondary hyperparathyroidism, particularly in dialysis patients, when increased serum levels of calcium-phosphorus product, the attendant risk of cardiovascular calcification, and its lack of efficacy limit use of the standard treatment.
Insights
Calcimimetics amplify the calcium-sensing receptor's (CaR) sensitivity to calcium, reducing parathyroid hormone (PTH) secretion. These drugs offer an alternative treatment for secondary hyperparathyroidism, especially in dialysis patients.
Area of Science:
- Endocrinology
- Nephrology
- Pharmacology
Background:
- The extracellular calcium-sensing receptor (CaR) regulates parathyroid hormone (PTH) secretion based on ionized calcium levels.
- Dysregulation of CaR and PTH contributes to secondary hyperparathyroidism, particularly in chronic kidney disease.
Purpose of the Study:
- To evaluate calcimimetics as modulators of CaR activity.
- To assess the efficacy of calcimimetics in treating secondary hyperparathyroidism and related complications.
Main Methods:
- Investigated calcimimetic effects on PTH secretion in vitro and in vivo.
- Assessed calcimimetics in animal models of uremia and in human hemodialysis patients.
Main Results:
- Calcimimetics dose-dependently suppress PTH secretion.
- In uremic animals, calcimimetics prevent and reverse parathyroid hyperplasia, normalizing PTH and bone remodeling.
- In dialysis patients, calcimimetics reduce PTH, calcium-phosphorus product, and improve bone remodeling.
Conclusions:
- Calcimimetics effectively lower PTH levels and improve mineral metabolism in secondary hyperparathyroidism.
- These agents represent a viable therapeutic option for dialysis patients, especially when standard treatments are limited by efficacy or side effects like cardiovascular calcification.
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