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Importance of vitamin D receptor activation in clinical practice
Insights
Vitamin D receptor (VDR) activation is vital for cardiovascular and kidney health. Selective VDR activators like paricalcitol may offer survival benefits beyond managing secondary hyperparathyroidism in CKD patients.
Area of Science:
- Nephrology
- Cardiology
- Endocrinology
Background:
- Vitamin D receptor (VDR) activation is crucial for cardiovascular (CV) and renal health.
- Deficiencies in VDR activation are linked to adverse CV outcomes and are a key factor in secondary hyperparathyroidism (SHPT) in chronic kidney disease (CKD).
- VDRs have widespread roles in cardiovascular, immune, and renal systems, influencing mineral homeostasis, hypertension, and vascular calcification.
Purpose of the Study:
- To explore the implications of VDR activation on cardiovascular and renal function.
- To highlight the role of VDR activation in CKD pathophysiology beyond SHPT.
- To discuss paricalcitol as a selective VDR activator for SHPT treatment.
Main Methods:
- Review of emerging evidence on VDR activation and its effects.
- Analysis of the pathophysiological role of VDR deficiency in CKD.
- Examination of paricalcitol's selective VDR activation properties.
Main Results:
- VDR activation influences numerous cardiovascular and renal endpoints.
- SHPT is one symptom of a broader disorder linked to VDR deficiency.
- Paricalcitol's selectivity may provide a wider therapeutic window and survival advantages.
Conclusions:
- VDR activation is critical for maintaining cardiovascular and renal health.
- Selective VDR activators like paricalcitol offer therapeutic potential beyond traditional mineral management in CKD.
- Paricalcitol's unique selectivity may contribute to improved survival rates in patients.
Abstract:
Continuously emerging evidence indicates that defi ciencies in 25-hydroxyvitamin D and consequently vitamin D receptor (VDR) activation play crucial roles in adversely affecting cardiovascular (CV) health in the general population and those at high risk of CV disease, as well as in patients with chronic kidney disease (CKD). In CKD patients, a lack of VDR activation is one of the main pathophysiological factors contributing to secondary hyperparathyroidism (SHPT). However, this lack of VDR activation has numerous additional implications on CV and renal function, with SHPT being only one symptom of a much more extensive disorder. VDRs are widely expressed throughout the body with manifold activities that involve feedback loops within the CV, immune, and renal systems. Modulation of VDR activator levels results in correlative regulatory effects on mineral homeostasis, hypertension, vascular disease, and vascular calcifi cation, as well as a number of other endpoints in cardiac and renal pathology. Among compounds available for the treatment of SHPT, paricalcitol is a selective VDR activator. The term 'selective' refers to paricalcitol being more selective in affecting VDR pathways in the PTH gland compared with bone and intestine. As such, paricalcitol's selectivity allows for a wider therapeutic window with effects beyond PTH control and mineral management, and may explain, in part, the increased survival advantage with paricalcitol treatment.
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