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Updated: Dec 8, 2025

4D Printed Bifurcated Stents with Kirigami-Inspired Structures
Published on: July 25, 2019
Computationally Designed 3D Printed Self-Expandable Polymer Stents with Biodegradation Capacity for Minimally
María Sol Cabrera1, Bart Sanders1,2, Olga J G M Goor2,3
1Department of Biomedical Engineering, Group of Soft Tissue Biomechanics and Tissue Engineering, Eindhoven University of Technology, Eindhoven, the Netherlands.
Abstract:
The evolution of minimally invasive implantation procedures and the in vivo remodeling potential of decellularized tissue-engineered heart valves require stents with growth capacity to make these techniques available for pediatric patients. By means of computational tools and 3D printing technology, this proof-of-concept study demonstrates the design and manufacture of a polymer stent with a mechanical performance comparable to that of conventional nitinol stents used for heart valve implantation in animal trials. A commercially available 3D printing polymer was selected, and crush and crimping tests were conducted to validate the results predicted by the computational model. Finally, the degradability of the polymer was assessed via accelerated hydrolysis.

