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Published on: May 11, 2015
Vasodilatory effect of pulsatile pressure on coronary resistance vessels
M Goto1, E VanBavel, M J Giezeman
1Department of Medical Physics, Academic Medical Center, University of Amsterdam The Netherlands.
Insights
Pulsatile pressure dilates coronary arterioles, especially when vascular tone is active. This finding reveals how vessel pulsation influences coronary blood flow regulation during the cardiac cycle.
Area of Science:
- Cardiovascular Physiology
- Vascular Biology
- Coronary Circulation
Background:
- Intramyocardial pressure is high during systole and low during diastole, causing pulsatile transmural pressure.
- Coronary resistance vessels experience cyclic distension due to this pulsatile pressure.
- The impact of pressure pulsatility on coronary resistance vessel behavior remains largely unevaluated.
Purpose of the Study:
- To investigate the influence of pulsatile pressure on the behavior of coronary arterioles.
- To assess how changes in pulse pressure amplitude and mean pressure affect arteriolar cross-sectional area.
Main Methods:
- Isolated porcine coronary arterioles (100-150 microns internal diameter) were cannulated and pressurized with square waves (1 Hz).
- Luminal cross-sectional area (CSA) was measured under conditions of active (acetylcholine-induced) and passive (bradykinin-mediated) vascular tone.
- Vessel response was analyzed by altering pulse pressure amplitude at fixed mean pressure, and by changing mean pressure at fixed pulse pressure.
Main Results:
- Increased pulse pressure amplitude led to increased mean CSA under active conditions (vasodilation) but decreased mean CSA under passive conditions.
- This vasodilatory effect of pulse pressure persisted even after endothelial denudation.
- Under passive conditions, mean CSA increased with mean pressure; under active conditions, it remained constant (50-100 mm Hg), indicating myogenic responsiveness.
Conclusions:
- An increased amplitude of the pressure pulse causes coronary arterioles to dilate.
- Pulsation-induced vasodilation may partially counteract the compressive forces on intramyocardial vessels during cardiac contraction.
- Understanding these dynamics is crucial for comprehending coronary blood flow regulation.
Abstract:
Intramyocardial pressure becomes high in systole and decreases in diastole. Therefore, the transmural pressure of the intramyocardial vessels is pulsatile, resulting in the cyclic distension of these vessels. However, the effect of pulsatility on the behavior of the coronary resistance vessels has not been evaluated. To assess the influence of pulsatile pressure on the behavior of the coronary arterioles, we measured the luminal cross-sectional area (CSA) of coronary arterioles under cyclically changing transmural pressure. Isolated porcine coronary arterioles (internal diameter, 100 to 150 microns) were cannulated with two micropipettes and pressurized with square waves (1 Hz) through both pipettes so as not to induce flow-dependent vasodilation. During the presence (active, induced by acetylcholine; n = 7) or absence (passive, abolished by bradykinin; n = 7) of vascular tone, the CSA was measured under the following conditions: (1) The amplitude of the pressure pulse was changed at a fixed mean pressure. (2) The mean pressure was changed at a fixed pressure pulse. With increasing pulse pressure, the mean CSA at steady state increased under active conditions, whereas it decreased under passive conditions (P < .0001). This vasodilatory effect of pulse pressure remained present after endothelial denudation (P < .0001; n = 6 vessels with basal tone, n = 9 vessels with U46619-induced tone). The mean steady state CSA under passive conditions increased with the mean pressure (P < .05), whereas under active conditions it remained constant in the range of mean pressures between 50 and 100 mm Hg, reflecting myogenic responsiveness. These results indicate that an increase in amplitude of the pressure pulse dilates coronary arterioles. The vasodilating effect of the pulsation may compensate partly for the extra compressing effect of cardiac contraction on the intramyocardial vessels.
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