Controlled Comparison of Simulated Hemodynamics across Tricuspid and Bicuspid Aortic Valves
Alexander D. Kaiser, Rohan Shad, Nicole Schiavone, William Hiesinger,, Alison L. Marsden

TL;DR
This study uses fluid-structure interaction simulations to compare hemodynamics in different bicuspid and tricuspid aortic valves, revealing how flow patterns may contribute to aneurysm development.
Contribution
It provides a systematic simulation-based comparison of hemodynamics in various bicuspid valve configurations using patient-specific geometry.
Findings
Bicuspid valves produce localized jets and elevated secondary flows.
Flow patterns correlate with sites of aortic dilation.
Simulations support flow-induced dilation hypothesis.
Abstract
Bicuspid aortic valve is the most common congenital heart defect, affecting 1-2% of the global population. Patients with bicuspid valves frequently develop dilation and aneurysms of the ascending aorta. Both hemodynamic and genetic factors are believed to contribute to dilation, yet the precise mechanism underlying this progression remains under debate. Controlled comparisons of hemodynamics in patients with different forms of bicuspid valve disease are challenging because of confounding factors, and simulations offer the opportunity for direct and systematic comparisons. Using fluid-structure interaction simulations, we simulate flows through multiple aortic valve models in a patient-specific geometry. The aortic geometry is based on a healthy patient with no known aortic or valvular disease, which allows us to isolate the hemodynamic consequences of changes to the valve alone. Four…
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Taxonomy
TopicsAortic Disease and Treatment Approaches · Cardiac Valve Diseases and Treatments · Aortic aneurysm repair treatments
