Related Experiment Video
Updated: Feb 4, 2026

Transaxillary First Rib Resection for Treatment of the Thoracic Outlet Syndrome
Published on: September 13, 2020
Image Predictors of Treatment Outcome after Thoracic Aortic Dissection Repair
Farhood Saremi1, Cameron Hassani1, Leah M Lin1
1From the Departments of Radiology (F.S., C.H., L.M.L., C.L., A.G.W.) and Cardiovascular Surgery (C.H., F.F., M.J.C.), University of Southern California, USC University Hospital, 1500 San Pablo St, Los Angeles, CA 90033.
Insights
Thoracic aortic dissection treatment is complex. Imaging identifies dissection extent and arch involvement, guiding surgical or endovascular repair (TEVAR) for type A and B dissections, and predicting aortic remodeling outcomes.
Area of Science:
- Cardiovascular Surgery
- Diagnostic Imaging
- Vascular Medicine
Background:
- Thoracic aortic dissection treatment is challenging and evolving.
- Classifications include Stanford (A/B) and DeBakey (I-III), with new systems for endovascular repair.
- Imaging is crucial for identifying dissection extent, primary tear location, and arch involvement, influencing treatment strategies.
Purpose of the Study:
- To review imaging findings in thoracic aortic dissection.
- To discuss the role of imaging in guiding treatment decisions for type A and B dissections.
- To analyze imaging predictors of aortic remodeling after surgical repair and thoracic endovascular aortic repair (TEVAR).
Main Methods:
- Review of current literature and imaging techniques for thoracic aortic dissection.
- Analysis of imaging findings related to Stanford type A and B dissections.
- Evaluation of imaging criteria for favorable and failing aortic remodeling post-intervention.
Main Results:
- Imaging techniques readily identify factors affecting treatment strategy, such as dissection extent and primary intimal tear location.
- TEVAR is used for surgically repaired type A dissections and complicated type B dissections.
- Imaging findings predict aortic remodeling post-repair, distinguishing between favorable and failing outcomes based on false lumen refilling patterns.
Conclusions:
- Accurate imaging is essential for effective thoracic aortic dissection management.
- Understanding imaging findings of false lumen refilling is key to predicting and managing aortic remodeling after repair.
- A systematic approach to imaging analysis aids in classifying causes of failing remodeling and optimizing patient care.
Abstract:
Treatment of thoracic aortic dissection remains highly challenging and is rapidly evolving. Common classifications of thoracic aortic dissection include the Stanford classification (types A and B) and the DeBakey classification (types I to III), as well as a new supplementary classification geared toward endovascular decision making. By using various imaging techniques, the extent of the dissection, the location of the primary intimal tear, the shape of the aortic arch, and the zonal involvement of the aortic arch-factors that affect the treatment strategy-can easily be identified. Thoracic endovascular aortic repair (TEVAR) is generally performed in two groups of patients: (a) those with a surgically repaired type A dissection, and (b) those with a complicated type B dissection. Several imaging findings can help predict the course of remodeling of the dissected aorta after a repaired type A dissection and TEVAR. A spectrum of imaging findings exist with regard to favorable (positive) or failing (negative) remodeling. A schematic model with imaging support allows the classification of important causes of failing remodeling into proximal and distal groups, on the basis of the origin of the refilling of the false lumen and the underlying pathophysiology of pressurization. Refilling of the false lumen of the aorta after repair of a type A dissection is usually secondary to a persistent intimal tear at the aortic arch, a leak of the distal graft anastomosis, or refilling from the false lumen of a dissected aortic arch vessel. After TEVAR, false lumen refilling is most commonly due to an incomplete seal of the proximal landing related to the aortic tortuosity, an arch branch stump, a supra-arch chimney stent, or the TEVAR technique. Online supplemental material is available for this article. ©RSNA, 2018.
Related Concept Videos
Mismatch Repair
Thoracic Aorta
Overview of DNA Repair
Chemically...
Base Excision Repair
The first step of...
Nucleotide Excision Repair
Predicting Reaction Outcomes

