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October 20, 2021European Heart Journal302 citationsOpen Access

Calcific aortic valve disease: from molecular and cellular mechanisms to medical therapy

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SKSimon KralerMBMark C. BlaserEAElena Aïkawa

Structured PICO

P
Population
Patients with calcific aortic valve disease (CAVD)
I
Intervention
Medical therapy targeting novel pathways (e.g., lipoprotein(a), mineral-binding matrix Gla protein, soluble guanylate cyclase, dipeptidyl peptidase-4)

This review highlights the distinct pathophysiology of calcific aortic valve disease compared to atherosclerosis and outlines emerging medical therapies targeting novel molecular pathways.

Abstract

Calcific aortic valve disease (CAVD) is a highly prevalent condition that comprises a disease continuum, ranging from microscopic changes to profound fibro-calcific leaflet remodelling, culminating in aortic stenosis, heart failure, and ultimately premature death. Traditional risk factors, such as hypercholesterolaemia and (systolic) hypertension, are shared among atherosclerotic cardiovascular disease and CAVD, yet the molecular and cellular mechanisms differ markedly. Statin-induced low-density lipoprotein cholesterol lowering, a remedy highly effective for secondary prevention of atherosclerotic cardiovascular disease, consistently failed to impact CAVD progression or to improve patient outcomes. However, recently completed phase II trials provide hope that pharmaceutical tactics directed at other targets implicated in CAVD pathogenesis offer an avenue to alter the course of the disease non-invasively. Herein, we delineate key players of CAVD pathobiology, outline mechanisms that entail compromised endothelial barrier function, and promote lipid homing, immune-cell infiltration, and deranged phospho-calcium metabolism that collectively perpetuate a pro-inflammatory/pro-osteogenic milieu in which valvular interstitial cells increasingly adopt myofibro-/osteoblast-like properties, thereby fostering fibro-calcific leaflet remodelling and eventually resulting in left ventricular outflow obstruction. We provide a glimpse into the most promising targets on the horizon, including lipoprotein(a), mineral-binding matrix Gla protein, soluble guanylate cyclase, dipeptidyl peptidase-4 as well as candidates involved in regulating phospho-calcium metabolism and valvular angiotensin II synthesis and ultimately discuss their potential for a future therapy of this insidious disease.

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Cite This Study

Kraler et al. (2021) studied this question.

synapsesocial.com/papers/69d575205f8349d3f7ad4fc6https://doi.org/10.1093/eurheartj/ehab757
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Relationship of Iron Deposition to Calcium Deposition in Human Aortic Valve Leaflets2019 · 75 citations
  2. 2Metabolic Syndrome Is Associated With More Pronounced Impairment of Left Ventricle Geometry and Function in Patients With Calcific Aortic Stenosis2010 · 99 citations
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  4. 4Assessment of Valvular Calcification and Inflammation by Positron Emission Tomography in Patients With Aortic Stenosis2011 · 332 citations
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