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Beyond the aorta: partial transmission of reflected waves from aortic coarctation into supra-aortic branches
Jonathan P Mynard1,2, Remi Kowalski3,4,5, Michael M H Cheung3,4,5
1Heart Research, Clinical Sciences, Murdoch Childrens Research Institute, 50 Flemington Road, Parkville, VIC, 3052, Australia. jonathan.mynard@mcri.edu.au.
Insights
In aortic coarctation, reflected waves transmit into supra-aortic vessels, increasing cerebral artery load and left ventricular (LV) stress. This wave transmission impacts both brain hemodynamics and LV afterload.
Area of Science:
- Cardiovascular Physiology
- Biomedical Engineering
- Hemodynamics
Background:
- Aortic coarctation causes wave reflections, increasing left ventricular (LV) afterload.
- The fate of these reflected waves, specifically their transmission into supra-aortic vessels, is not fully understood.
Purpose of the Study:
- To investigate the hypothesis that backward compression waves (BCW) are transmitted into supra-aortic vessels as forward waves.
- To explore the consequences of this transmission on cerebral and LV hemodynamic load.
Main Methods:
- High-fidelity pressure and flow measurements in the aortic trunk (AoT) and brachiocephalic trunk (BCT) in eight sheep.
- Baseline and descending aortic constriction measurements.
- Wave power analysis and mathematical modeling of systemic arteries and aortic coarctation.
Main Results:
- Aortic constriction generated a BCW in the AoT and a secondary forward wave in the BCT, augmenting pressure and flow.
- Mathematical analysis indicated that relative vessel admittance dictates wave transmission.
- Reduced supra-aortic admittance increased cerebral artery pulsatility, mimicked older adult flow waveforms, and enhanced LV load.
Conclusions:
- Wave transmission into supra-aortic branches significantly impacts cerebral hemodynamics in aortic coarctation.
- This phenomenon increases myocardial stress, potentially promoting LV hypertrophy.
- Understanding wave transmission is crucial for managing hemodynamic load in aortic coarctation.
Abstract:
Wave reflection from the site of aortic coarctation produces a reflected backward compression wave (BCW) that raises left ventricular (LV) afterload. However, not all reflected wave power will propagate back to the LV. This study investigated the hypothesis that the BCW is partially transmitted into supra-aortic vessels as a forward wave and explored the consequences of this phenomenon for cerebral and LV haemodynamic load. In eight sheep, high fidelity pressure and flow were measured in the aortic trunk (AoT) and brachiocephalic trunk (BCT, the single supra-aortic vessel present in sheep) at baseline and during two levels of proximal descending aortic constriction. Wave power analysis showed that aortic constriction produced not only a BCW in the AoT, but also a second forward compression wave ([Formula: see text] in the BCT that augmented pressure and flow after the initial forward compression wave ([Formula: see text]. Mathematical analysis and a one-dimensional model of the human systemic arteries and aortic coarctation suggested that the relative transmission of waves into supra-aortic vessels versus the aorta was determined by the relative admittances of these vessels. Reducing supra-aortic admittance (1) increased pressure and flow pulsatility in cerebral arteries, (2) produced carotid and middle cerebral arterial flow waveforms with an older adult phenotype, (3) promoted transmission of reflected wave power towards the LV and (4) substantially increased mid- to late-systolic myocardial stress, which may promote LV hypertrophy. These findings suggest that wave transmission into supra-aortic branches has an important impact on both cerebral hemodynamics and LV load in aortic coarctation.
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