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Updated: Jan 13, 2026

Three-Dimensional Printing of a Complex Aortic Anomaly
Published on: November 1, 2018
3D-printed in vitro models of Stanford type B aortic dissection: A scoping review
Matthias Niklas Hagedorn1, Marcello Mächerle1, Roger Karl2,3
1Department of Vascular and Endovascular Surgery, Heidelberg University Hospital, Heidelberg, Germany.
Abstract:
Patient-specific three-dimensional-printed phantoms have emerged as valuable tools for simulating Stanford type B aortic dissections in vitro, enabling detailed studies of dissection morphology, hemodynamics, and interventional techniques under controlled, anatomically realistic conditions. Despite their potential, current methodologies remain heterogeneous and lack standardization. This scoping review, compliant with the PRISMA guidelines, systematically evaluated literature describing additive-manufactured flexible aortic phantoms specifically for pulsatile flow experiments or endovascular procedures. From an initial pool of 120 publications, five studies met the inclusion criteria, all using clinical imaging data and PolyJet-technology with flexible photopolymers. Four studies used full-scale models to simulate hemodynamics or thoracic endovascular aortic repair, and one investigated imaging properties in smaller segments. Although these phantoms reliably replicate dissection anatomy and flow patterns, widespread adoption is constrained by resource demands, simplified wall mechanics, exclusion of smaller vessel branches, and variable fabrication methods. Additional limitations include material durability and single-use designs. Standardizing fabrication protocols and developing advanced biomimetic materials could significantly enhance the physiological accuracy, reproducibility, and practicality of these models. Patient-specific three-dimensional-printed type B aortic dissections phantoms thus represent potentially valuable tools for improving surgical training, procedural rehearsal, morphological insights, and device innovation, ultimately bridging benchtop simulations and clinical practice.
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