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Impact of extra-anatomical bypass on coarctation fluid dynamics using patient-specific lumped parameter and Lattice
Reza Sadeghi1, Benjamin Tomka1, Seyedvahid Khodaei1
1Department of Mechanical Engineering, McMaster University, Hamilton, Canada, ON.
Insights
Bypass grafting for coarctation of the aorta (COA) shows mixed hemodynamic results. While improving Doppler gradients, it can worsen hypertension and create risky flow patterns at graft junctions, potentially leading to aortic rupture.
Area of Science:
- Cardiovascular Surgery
- Biomedical Engineering
- Medical Imaging
Background:
- Accurate hemodynamic analysis is vital for diagnosing coarctation of the aorta (COA) and guiding interventions.
- Extra-anatomic bypass grafting is a surgical technique for COA, but its aortic impact requires further investigation.
Purpose of the Study:
- To investigate the impact of bypass grafting on aortic hemodynamics in patients with COA.
- To assess changes in key hemodynamic metrics post-intervention using a patient-specific computational framework.
Main Methods:
- Utilized a patient-specific computational-mechanics framework.
- Analyzed hemodynamic data from three patients with COA who underwent bypass grafting.
Main Results:
- Doppler pressure gradients improved, but flow rate through the COA was not substantially reduced.
- Systemic arterial compliance and flow velocity magnitude showed variable improvements; hypertension worsened in all patients.
- Elevated velocity, vortical flow, turbulence, and wall shear stress were observed at bypass graft junctions.
Conclusions:
- Bypass grafting can lead to adverse hemodynamic changes, including pseudoaneurysm formation and potential aortic rupture.
- Persistent abnormal hemodynamics at graft sites may cause arterial remodeling, intimal hyperplasia, and increase rupture risk.
Abstract:
Accurate hemodynamic analysis is not only crucial for successful diagnosis of coarctation of the aorta (COA), but intervention decisions also rely on the hemodynamics assessment in both pre and post intervention states to minimize patient risks. Despite ongoing advances in surgical techniques for COA treatments, the impacts of extra-anatomic bypass grafting, a surgical technique to treat COA, on the aorta are not always benign. Our objective was to investigate the impact of bypass grafting on aortic hemodynamics. We investigated the impact of bypass grafting on aortic hemodynamics using a patient-specific computational-mechanics framework in three patients with COA who underwent bypass grafting. Our results describe that bypass grafting improved some hemodynamic metrics while worsened the others: (1) Doppler pressure gradient improved (decreased) in all patients; (2) Bypass graft did not reduce the flow rate substantially through the COA; (3) Systemic arterial compliance increased in patients #1 and 3 and didn't change (improve) in patient 3; (4) Hypertension got worse in all patients; (5) The flow velocity magnitude improved (reduced) in patient 2 and 3 but did not improve significantly in patient 1; (6) There were elevated velocity magnitude, persistence of vortical flow structure, elevated turbulence characteristics, and elevated wall shear stress at the bypass graft junctions in all patients. We concluded that bypass graft may lead to pseudoaneurysm formation and potential aortic rupture as well as intimal hyperplasia due to the persistent abnormal and irregular aortic hemodynamics in some patients. Moreover, post-intervention, exposures of endothelial cells to high shear stress may lead to arterial remodeling, aneurysm, and rupture.
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