Objective: Left subclavian artery (LSA)-branched endografts with retrograde inner branch configuration (thoracic branch endoprosthesis [TBE]) offer a complete endovascular solution when LSA preservation is required during zone 2 thoracic endovascular aortic repair. However, the hemodynamic consequences of the TBE have not been well-investigated. We compared near-wall hemodynamic parameters before and after the TBE implantation using computational fluid dynamic simulations.
Methods: Eleven patients who had undergone TBE implantation were included. Three-dimensional aortic arch geometries were constructed from the pre- and post-TBE implantation computed tomography images. The resulting 22 three-dimensional aortic arch geometries were then discretized into finite element meshes for computational fluid dynamic simulations. Inflow boundary conditions were prescribed using normal physiological pulsatile circulation. Outlet boundary conditions consisted of Windkessel models with previously published values. Blood flow, modeled as Newtonian fluid, simulations were performed with rigid wall assumptions using SimVascular's incompressible Navier-Stokes solver. We compared well-established hemodynamic descriptors: pressure, flow rate, time-averaged wall shear stress (TAWSS), the oscillatory shear index (OSI), and percent area with an OSI of >0.2. Data were presented on the stented portion of the LSA.
Results: TBE implantation was associated with a small decrease in peak LSA pressure (153 mm Hg; interquartile range [IQR], 151-154 mm Hg vs 159 mm Hg; IQR, 158-160 mm Hg; = .005). No difference was observed in peak LSA flow rates before and after implantation: 40.4 cm/ (IQR, 39.5-41.6 cm/s) vs 41.3 cm/s (IQR, 37.2-44.8 cm/s; = .59). There was a significant postimplantation increase in TAWSS (15.2 dynes/cm [IQR, 12.2-17.7 dynes/cm] vs 6.2 dynes/cm [IQR, 5.7-10.3 dynes/cm]; = .003), leading to decreases in both the OSI (0.088 [IQR, 0.063 to -0.099] vs 0.1 [IQR, 0.096-0.16]; = .03) and percentage of area with an OSI of >0.2 (10.4 [IQR, 5.8-15.8] vs 15.7 [IQR, 10.7-31.9]; = .13). Neither LSA side branch angulation (median, 81°, IQR, 77°-109°) nor moderate compression (16%-58%) seemed to have an impact on the pressure, flow rate, TAWSS, or percentage of area with an OSI of >0.2 in the stented LSA.
Conclusions: The implantation of TBE produces modest hemodynamic disturbances that are unlikely to result in clinically relevant changes.
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http://dx.doi.org/10.1016/j.jvssci.2023.100116 | DOI Listing |
Chirurgie (Heidelb)
June 2024
Klinik für Gefäßchirurgie und Endovaskuläre Chirurgie, Universitätsklinikum Heidelberg, Im Neuenheimer Feld 420, 69120, Heidelberg, Deutschland.
Background: The standard vascular surgical procedure (SV) for the treatment of distal aortic arch pathologies involves a hybrid approach using a left carotid-subclavian bypass and thoracic endovascular aortic repair. Considering the introduction of a thoracic side branch prosthesis (TBE), the aim of this study was to analyze the cost-revenue aspects of both procedures.
Material And Methods: A retrospective analysis was conducted on cases treated by SV from 2017 to 2022.
J Vasc Surg
July 2024
Division of Vascular Surgery, University of Washington, Seattle, WA. Electronic address:
Objective: The only commercially available thoracic branched endoprosthesis (TBE) for treatment of the aortic arch was released in 2022. Limited data outside of clinical trial results have been reported. This study describes the demographics, anatomic details, and outcomes for patients treated for zone 0 to 2 using TBEs outside of a clinical trial.
View Article and Find Full Text PDFJVS Vasc Sci
June 2023
Department of Surgical Sciences, Vascular Surgery, Uppsala University, Uppsala, Sweden.
Objective: Left subclavian artery (LSA)-branched endografts with retrograde inner branch configuration (thoracic branch endoprosthesis [TBE]) offer a complete endovascular solution when LSA preservation is required during zone 2 thoracic endovascular aortic repair. However, the hemodynamic consequences of the TBE have not been well-investigated. We compared near-wall hemodynamic parameters before and after the TBE implantation using computational fluid dynamic simulations.
View Article and Find Full Text PDFProc (Bayl Univ Med Cent)
May 2023
Division of Vascular and Endovascular Surgery, Baylor Scott and White The Heart Hospital - Plano, Plano, Texas.
Background: Thoracic endovascular aortic repair (TEVAR) involving landing zone 2 can require extra-anatomic debranching (SR-TEVAR) to ensure left subclavian artery perfusion, resulting in increased costs. A single-branch device (Thoracic Branch Endoprosthesis [TBE], WL Gore, Flagstaff, AZ) provides a total endovascular solution. Comparative cost analysis of patients undergoing zone 2 TEVAR requiring left subclavian artery preservation with TBE versus SR-TEVAR is presented.
View Article and Find Full Text PDFJ Cardiovasc Surg (Torino)
February 2023
Advanced Aortic Research Program, McGovern Medical School, Department of Cardiothoracic and Vascular Surgery, Memorial Hermann Medical Plaza, University of Texas Health Science Center at Houston, Houston, TX, USA -
Thoracic endovascular aortic repair (TEVAR) has been widely accepted as a treatment option in patients with thoracic aortic aneurysms and dissections who have suitable anatomy. It is estimated that up to 60% of patients treated by TEVAR require extension of the repair into the distal aortic arch across Ishimaru zone 2. In these patients, coverage of the left subclavian artery (LSA) without revascularization has been associated with increased risk of arm ischemia, stroke, and spinal cord injury.
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