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Cardiorenal syndrome and vitamin D receptor activation in chronic kidney disease
Sirous Darabian1, Manoch Rattanasompattikul2, Parta Hatamizadeh2
1Harold Simmons Center for Kidney Disease Research and Epidemiology, Los Angeles Biomedical Research Institute at Harbor-UCLA Medical Center, Torrance, CA, USA; St. John Cardiovascular Reserach Center, Los Angeles Biomedical Research Institute at Harbor-UCLA Medical Center, Torrance, CA, USA.
Insights
Vitamin D receptor (VDR) activation is crucial in managing cardiorenal syndrome (CRS), a serious condition linking heart and kidney diseases. Newer vitamin D mimetics show promise in improving survival for CRS patients, particularly those with chronic kidney disease.
Area of Science:
- Nephrology and Cardiology
- Endocrinology
- Pharmacology
Background:
- Cardiorenal syndrome (CRS) describes the complex interplay between heart and kidney diseases.
- Chronic kidney disease (CKD) patients frequently experience CRS, leading to significant morbidity and mortality.
- Suboptimal vitamin D receptor (VDR) activation is implicated in the pathophysiology and exacerbation of CRS.
Purpose of the Study:
- To review the role of VDR activation in cardiorenal syndrome.
- To explore the potential of novel VDR activators in managing CRS.
- To discuss findings related to VDR pathway modulation for CRS treatment.
Main Methods:
- Literature review focusing on VDR activation and its impact on CRS.
- Analysis of studies investigating vitamin D mimetics (e.g., paricalcitol, maxacalcitol).
- Examination of data on VDR activation selectivity and patient survival outcomes.
Main Results:
- Defective VDR activation may contribute to the development or worsening of CRS.
- Selective VDR activators (vitamin D mimetics) show potential therapeutic benefits in CRS.
- Some studies suggest survival advantages with vitamin D mimetics compared to non-selective activators, particularly at higher doses.
Conclusions:
- Modulating the VDR pathway represents a promising therapeutic strategy for managing CRS.
- Further research is needed to validate the survival benefits of vitamin D mimetics and optimize their use in CRS.
- Exploring additional VDR pathway targets could lead to novel CRS management approaches.
Abstract:
Cardiorenal syndrome (CRS) refers to a constellation of conditions whereby heart and kidney diseases are pathophysiologically connected. For clinical purposes, it would be more appropriate to emphasize the pathophysiological pathways to classify CRS into: (1) hemodynamic, (2) atherosclerotic, (3) uremic, (4) neurohumoral, (5) anemic-hematologic, (6) inflammatory-oxidative, (7) vitamin D receptor (VDR) and/or FGF23-, and (8) multifactorial CRS. In recent years, there have been a preponderance data indicating that vitamin D and VDR play an important role in the combination of renal and cardiac diseases. This review focuses on some important findings about VDR activation and its role in CRS, which exists frequently in chronic kidney disease patients and is a main cause of morbidity and mortality. Pathophysiological pathways related to suboptimal or defective VDR activation may play a role in causing or aggravating CRS. VDR activation using newer agents including vitamin D mimetics (such as paricalcitol and maxacalcitol) are promising agents, which may be related to their selectivity in activating VDR by means of attracting different post-D-complex cofactors. Some, but not all, studies have confirmed the survival advantages of D-mimetics as compared to non-selective VDR activators. Higher doses of D-mimetic per unit of parathyroid hormone (paricalcitol to parathyroid hormone ratio) is associated with greater survival, and the survival advantages of African American dialysis patients could be explained by higher doses of paricalcitol (>10 μg/week). More studies are needed to verify these data and to explore additional avenues for CRS management via modulating VDR pathway.
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