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Endogenous Calcification Inhibitors in the Prevention of Vascular Calcification: A Consensus Statement From the COST
Magnus Bäck1, Tamas Aranyi2, M Leonor Cancela3
1Translational Cardiology, Center for Molecular Medicine, Karolinska University Hospital Stockholmt, Stockholm, Sweden.
Abstract:
The physicochemical deposition of calcium-phosphate in the arterial wall is prevented by calcification inhibitors. Studies in cohorts of patients with rare genetic diseases have shed light on the consequences of loss-of-function mutations for different calcification inhibitors, and genetic targeting of these pathways in mice have generated a clearer picture on the mechanisms involved. For example, generalized arterial calcification of infancy (GACI) is caused by mutations in the enzyme ecto-nucleotide pyrophosphatase/phosphodiesterase-1 (eNPP1), preventing the hydrolysis of ATP into pyrophosphate (PPi). The importance of PPi for inhibiting arterial calcification has been reinforced by the protective effects of PPi in various mouse models displaying ectopic calcifications. Besides PPi, Matrix Gla Protein (MGP) has been shown to be another potent calcification inhibitor as Keutel patients carrying a mutation in the encoding gene or Mgp-deficient mice develop spontaneous calcification of the arterial media. Whereas PPi and MGP represent locally produced calcification inhibitors, also systemic factors contribute to protection against arterial calcification. One such example is Fetuin-A, which is mainly produced in the liver and which forms calciprotein particles (CPPs), inhibiting growth of calcium-phosphate crystals in the blood and thereby preventing their soft tissue deposition. Other calcification inhibitors with potential importance for arterial calcification include osteoprotegerin, osteopontin, and klotho. The aim of the present review is to outline the latest insights into how different calcification inhibitors prevent arterial calcification both under physiological conditions and in the case of disturbed calcium-phosphate balance, and to provide a consensus statement on their potential therapeutic role for arterial calcification.
Insights
Calcification inhibitors like pyrophosphate (PPi) and Matrix Gla Protein (MGP) prevent arterial calcification. This review details their roles and therapeutic potential in managing vascular calcification.
Area of Science:
- Vascular Biology
- Biochemistry
- Genetics
Background:
- Arterial calcification is a pathological process involving calcium-phosphate deposition.
- Genetic studies in rare diseases and mouse models reveal key calcification inhibitors.
- Loss-of-function mutations in inhibitors like eNPP1 and MGP lead to severe arterial calcification.
Purpose of the Study:
- To review current understanding of calcification inhibitors in preventing arterial calcification.
- To explore the mechanisms of both local and systemic inhibitors.
- To provide a consensus on the therapeutic potential of these inhibitors.
Main Methods:
- Review of literature on genetic diseases and mouse models.
- Analysis of the roles of pyrophosphate (PPi), Matrix Gla Protein (MGP), and Fetuin-A.
- Discussion of other potential inhibitors like osteoprotegerin, osteopontin, and klotho.
Main Results:
- Pyrophosphate (PPi), generated by eNPP1, is crucial for inhibiting arterial calcification.
- Matrix Gla Protein (MGP) deficiency causes spontaneous arterial medial calcification.
- Systemic factors like Fetuin-A, forming calciprotein particles (CPPs), prevent soft tissue calcification.
Conclusions:
- Multiple calcification inhibitors, both local and systemic, are essential for preventing arterial calcification.
- Understanding these pathways offers potential therapeutic targets for vascular calcification disorders.
- Further research is needed to translate these findings into clinical applications.
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