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.

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