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Regulation of Vascular Calcification by Reactive Oxygen Species

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Date 2020 Oct 14
PMID 33049989
Citations 34
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Abstract

Vascular calcification is the deposition of hydroxyapatite crystals in the medial or intimal layers of arteries that is usually associated with other pathological conditions including but not limited to chronic kidney disease, atherosclerosis and diabetes. Calcification is an active, cell-regulated process involving the phenotype transition of vascular smooth muscle cells (VSMCs) from contractile to osteoblast/chondrocyte-like cells. Diverse triggers and signal transduction pathways have been identified behind vascular calcification. In this review, we focus on the role of reactive oxygen species (ROS) in the osteochondrogenic phenotype switch of VSMCs and subsequent calcification. Vascular calcification is associated with elevated ROS production. Excessive ROS contribute to the activation of certain osteochondrogenic signal transduction pathways, thereby accelerating osteochondrogenic transdifferentiation of VSMCs. Inhibition of ROS production and ROS scavengers and activation of endogenous protective mechanisms are promising therapeutic approaches in the prevention of osteochondrogenic transdifferentiation of VSMCs and subsequent vascular calcification. The present review discusses the formation and actions of excess ROS in different experimental models of calcification, and the potential of ROS-lowering strategies in the prevention of this deleterious condition.

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References
1.
Bjornheden T, Levin M, Evaldsson M, Wiklund O . Evidence of hypoxic areas within the arterial wall in vivo. Arterioscler Thromb Vasc Biol. 1999; 19(4):870-6. DOI: 10.1161/01.atv.19.4.870. View

2.
Waypa G, Smith K, Schumacker P . O2 sensing, mitochondria and ROS signaling: The fog is lifting. Mol Aspects Med. 2016; 47-48:76-89. PMC: 4750107. DOI: 10.1016/j.mam.2016.01.002. View

3.
Liberman M, Bassi E, Martinatti M, Lario F, Wosniak Jr J, Pomerantzeff P . Oxidant generation predominates around calcifying foci and enhances progression of aortic valve calcification. Arterioscler Thromb Vasc Biol. 2007; 28(3):463-70. DOI: 10.1161/ATVBAHA.107.156745. View

4.
Raines E, Garton K, Ferri N . Beyond the endothelium: NF-kappaB regulation of smooth muscle function. Circ Res. 2004; 94(6):706-8. DOI: 10.1161/01.RES.0000125646.08156.4D. View

5.
Alexander M, Owens G . Epigenetic control of smooth muscle cell differentiation and phenotypic switching in vascular development and disease. Annu Rev Physiol. 2011; 74:13-40. DOI: 10.1146/annurev-physiol-012110-142315. View