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Ultrasound Assessment of Endothelial Function: A Technical Guideline of the Flow-mediated Dilation Test
Published on: April 27, 2016
Oxypurinol improves coronary and peripheral endothelial function in patients with coronary artery disease
Stephan Baldus1, Ralf Köster, Phillip Chumley
1Department of Cardiology, University Hospital Hamburg-Eppendorf, Martinistrasse 52, 20246 Hamburg, Germany. baldus@uke.uni-hamburg.de
Insights
Xanthine oxidase (XO) inhibition with oxypurinol improves coronary endothelial dysfunction in patients with coronary artery disease (CAD). This suggests XO-derived reactive oxygen species impair nitric oxide bioavailability in CAD, offering a new treatment strategy.
Area of Science:
- Cardiovascular Medicine
- Pharmacology
- Biochemistry
Background:
- Coronary endothelial dysfunction is a key prognostic marker in coronary artery disease (CAD).
- Oxidative stress, particularly from xanthine oxidase (XO), inhibits nitric oxide (NO)-dependent signaling.
- The effect of XO inhibition on coronary vasomotor function in CAD patients is unknown.
Purpose of the Study:
- To assess if oxypurinol, an XO inhibitor, improves coronary endothelial function in patients with CAD.
- To investigate the role of XO-derived reactive oxygen species in CAD-related endothelial dysfunction.
Main Methods:
- 18 patients with CAD underwent intracoronary acetylcholine (ACh) infusion to assess minimal lumen diameter (MLD) and coronary blood flow (CBF).
- Measurements were taken before and after intravenous oxypurinol administration.
- Plasma XO activity and brachial artery flow-mediated dilation were also assessed.
Main Results:
- Oxypurinol significantly inhibited plasma XO activity by 63%.
- In patients with endothelial dysfunction, oxypurinol attenuated ACh-induced vasoconstriction and increased CBF.
- Brachial artery flow-mediated dilation improved after oxypurinol administration.
Conclusions:
- Oxypurinol effectively improves coronary vascular endothelial dysfunction in CAD patients.
- XO-derived reactive oxygen species contribute significantly to impaired NO bioavailability in CAD.
- XO inhibition presents a potential therapeutic strategy for inflammatory vascular diseases.
Abstract:
Coronary endothelial dysfunction is a powerful prognostic marker in patients with coronary artery disease (CAD) that is centrally related to oxidative inhibition of nitric oxide (NO)-dependent vascular cell signaling. Xanthine oxidase (XO), which both binds to and is expressed by endothelial cells, generates superoxide and hydrogen peroxide upon oxidation of purines. Whether inhibition of xanthine oxidase activity results in improved coronary vasomotor function in patients with CAD, however, remains unknown. We assessed coronary and peripheral (brachial artery) endothelial function in 18 patients (pts; 65+/-8 years, 86% male) with angiographically documented CAD, preserved left ventricular function, and non-elevated uric acid levels (233+/-10 microM). Patients received incremental doses of intracoronary acetylcholine (ACh; 10(-7) to 10(-5) microM), and minimal lumen diameter (MLD) and coronary blood flow (CBF) were assessed before and after intravenous administration of oxypurinol (200 mg). Oxypurinol inhibited plasma XO activity 63% (0.051+/- 0.001 vs 0.019+/- 0.005 microU/mg protein; p<0.01). In pts who displayed endothelial dysfunction as evidenced by coronary vasoconstriction in response to ACh (n=13), oxypurinol markedly attenuated ACh-induced vasoconstriction (-23+/- 4 vs -15+/- 4% at ACh 10(-5) microM, p<0.05) and significantly increased CBF (16+/-17 vs 62+/-18% at ACh 10(-5) microM, p<0.05), whereas in patients with preserved coronary endothelial function, oxypurinol had no effect on ACh-dependent changes in MLD (+2.8+/- 4.2 vs 5.2+/- 0.7%, p>0.05) or CBF (135+/-75 vs 154+/-61%, p>0.05). Flow-mediated dilation of the brachial artery, assessed in eight consecutive patients, increased from 5.1+/-1.5 before to 7.6+/-1.5% after oxypurinol administration (p < 0.05). Oxypurinol inhibition of XO improves coronary vascular endothelial dysfunction, a hallmark of patients with CAD. These observations reveal that XO-derived reactive oxygen species significantly contribute to impaired coronary NO bioavailability in CAD and that XO inhibition represents an additional treatment concept for inflammatory vascular diseases that deserves further investigation.
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