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Updated: Aug 22, 2026

En Face Detection of Nitric Oxide and Superoxide in Endothelial Layer of Intact Arteries
Published on: February 25, 2016
Nitric oxide and H2O2 contribute to reactive dilation of isolated coronary arterioles
1Dept. of Physiology, New York Medical College, Valhalla, NY 10595, USA. koller@nymc.edu
Insights
Hemodynamic forces, not just metabolic factors, trigger reactive hyperemia in coronary arterioles. Mechanical changes during occlusion release nitric oxide and hydrogen peroxide, causing vessel dilation.
Area of Science:
- Cardiovascular Physiology
- Vascular Biology
- Mechanobiology
Background:
- Reactive hyperemia in coronary circulation is primarily attributed to metabolic factors.
- The role of mechanical forces in initiating reactive hyperemia is less understood.
Purpose of the Study:
- To investigate if intraluminal pressure and flow changes during occlusion/release (O/R) activate mechanosensitive mechanisms.
- To determine if these mechanisms elicit vasoactive factor release, causing reactive dilation in coronary arterioles.
Main Methods:
- Isolated coronary arterioles were subjected to brief occlusions (30-120s) with controlled pressure or pressure plus flow (P+F) changes.
- Videomicroscopy measured arteriolar diameter changes in response to O/R.
- Pharmacological inhibition (L-NAME) and endothelium removal were used to assess the role of nitric oxide (NO).
- Catalase was used to investigate the role of hydrogen peroxide (H2O2).
Main Results:
- Both pressure and P+F changes during O/R induced initial constriction followed by dilation.
- Peak and duration of reactive dilations increased with occlusion duration, especially in P+F protocols.
- Inhibition of NO synthase (L-NAME) or endothelium removal reduced dilations in both protocols.
- Catalase reduced peak dilations but not their duration.
Conclusions:
- Mechanosensitive mechanisms responding to pressure, stretch, and shear stress are activated by O/R.
- These mechanisms trigger the release of NO and H2O2, leading to reactive dilation in coronary arterioles.
- Hemodynamic forces play a significant role in mediating reactive hyperemia.
Abstract:
The role of metabolic factors derived from cardiac muscle in the development of reactive hyperemia after brief occlusions of the coronary circulation seems to be well established. However, the contribution of occlusion-induced changes in hemodynamic forces to eliciting reactive hyperemia is less known. We hypothesized that in isolated coronary arterioles changes in intraluminal pressure and flow, during and after release of occlusion (O/R), themselves via activating intrinsic mechanosensitive mechanisms, elicit release of vasoactive factors resulting in reactive dilations. Thus in isolated coronary arterioles (diameter: 88 +/- 8 microm) changes in diameter to changes in pressure or pressure plus flow (P+F) during and after a brief period (30, 60, and 120 s) of O/R of cannulating tube were measured by videomicroscopy. In response to both types of O/R, diameter first decreased, then, subsequently increased during occlusions. When only pressure was changed (from 80-10-80 mmHg), after release of occlusion, peak dilations increased as a function of the duration of occlusions. After flow was established (30 microl/min), O/R elicited changes in both pressure and flow (from 80-10-80 mmHg and from 0 to 30 microl/min). In these conditions, after the release of occlusions, not only the peak but also the duration of reactive dilation increased significantly as a function of the length of occlusions. The dilations during, and peak dilations after occlusions both in pressure and P+F protocols were significantly reduced by the inhibition of NO synthase with Nomega-nitro-L-arginine-methyl-ester (L-NAME) or by endothelium removal, whereas duration of postocclusion dilations were reduced by L-NAME or by endothelium removal only in P+F protocols. Furthermore, in both protocols, catalase significantly reduced the peak but not the duration of reactive dilations. Thus, mechanosensitive mechanisms that are sensitive to deformation, pressure, stretch, and wall shear stress elicit release of NO and H2O2, resulting in reactive dilation of isolated coronary arterioles.
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