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Calcification of Vascular Smooth Muscle Cells and Imaging of Aortic Calcification and Inflammation
Published on: May 31, 2016
Vascular calcification in patients with end-stage renal disease
Jürgen Floege1, Markus Ketteler
1Medizinische Klinik II, Klinikum der RWTH, Pauwelsstrasse 30, D-52074 Aachen, Germany. Juergen.Floege@post.rwth-aachen.de
Insights
Vascular calcification in end-stage renal disease (ESRD) is common and linked to mortality. New insights reveal active cellular processes and inhibitors like fetuin-A, suggesting novel treatments beyond current phosphate binders.
Area of Science:
- Nephrology
- Vascular Biology
- Biochemistry
Background:
- Vascular calcification is prevalent in end-stage renal disease (ESRD), causing arterial stiffening and increased mortality.
- Risk factors include age, dialysis duration, diabetes, high calcium-phosphorus product, calcium-based binders, and inflammation.
- Traditionally viewed as passive, vascular calcification involves active phosphate uptake by vascular smooth muscle cells, leading to osteoblast-like transformation.
Purpose of the Study:
- To review the pathogenesis of vascular calcification in ESRD.
- To discuss the role of endogenous calcification inhibitors, particularly fetuin-A.
- To explore potential new therapeutic strategies and the established role of sevelamer hydrochloride.
Main Methods:
- Literature review of vascular calcification in ESRD.
- Analysis of cellular mechanisms and biochemical pathways involved.
- Evaluation of clinical data on risk factors and therapeutic interventions.
Main Results:
- Vascular calcification is an active process involving vascular smooth muscle cells and osteoblast-like changes.
- Systemic inflammation downregulates fetuin-A, a key inhibitor of calcification, and low fetuin-A predicts mortality.
- Sevelamer hydrochloride, a non-calcaemic binder, is the only prospectively proven preventive measure, though its exact mechanism is debated.
Conclusions:
- Understanding the active pathogenesis of vascular calcification in ESRD opens avenues for targeted therapies.
- Fetuin-A's role in inflammation and calcification warrants further investigation for therapeutic potential.
- Sevelamer hydrochloride offers a proven preventive strategy, but further research is needed to clarify its benefits regarding hypercalcemia and LDL reduction.
Abstract:
Vascular calcification is the most common type of extra-osseous calcification in end-stage renal disease (ESRD), manifesting as both medial and intimal calcification of large arteries. It is highly prevalent, often progressive and is associated with reduced arterial elasticity and increased mortality. Risk factors for calcification in ESRD include age, duration of dialysis, diabetes mellitus, most probably an elevated calcium-phosphorus product (Ca x P) level, the dose of calcium-containing phosphate binders and the induction of the systemic inflammatory response. Uraemic calcification was thought to be a largely physico-chemical process facilitated by elevated Ca x P (i.e. "metastatic" calcification). It is now well established, however, that vascular smooth muscle cells actively take up phosphate to form bioapatite. This process is associated with a phenotypic transformation of vascular smooth muscle cells during which they express osteoblast markers. In addition to phosphate, various other factors are likely to increase bioapatite formation, e.g. lipids and inflammatory cytokines. There have also been relatively new insights relating to the role of endogenous inhibitors of calcification [i.e. matrix Gla protein and fetuin-A (alpha(2)-Heremans-Schmid glycoprotein)], in particular the downregulation of fetuin-A in systemic inflammation. Decreased serum fetuin-A has been shown to be associated with a reduced capacity to inhibit calcium phosphate precipitation in vitro and is predictive of mortality in dialysis patients. These new insights into pathogenesis may lead to better prevention and treatment of calcification (e.g. with calcimimetics, anti-cytokines, etc.). However, the only preventive approach to have been established prospectively to date is the replacement of calcium-containing phosphate binders with sevelamer HCl, a non-calcaemic phosphate binder. Yet, it remains unclear whether sevelamer HCl reduces vascular calcification by preventing episodes of hypercalcaemia and/or by reducing low-density lipoprotein (LDL)-cholesterol levels.
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