Key result
A translucent 3D-printed artificial heart model was successfully developed and placed in a human manikin to allow repeated surgical training for trans-apical aortic valve replacement procedures.
A novel 3D-printed translucent heart model provides a feasible, radiation-free training setup for trans-apical aortic valve replacement, potentially reducing the need for animal models.
May enable radiation-free TAVR training in manikins; leaves open validation versus animal models before educational adoption.
Trans-apical aortic valve replacement (AVR) is a new and rapidly growing therapy. However, there are only few training opportunities. The objective of our work is to build an appropriate artificial model of the heart that can replace the use of animals for surgical training in trans-apical AVR procedures. To reduce the necessity for fluoroscopy, we pursued the goal of building a translucent model of the heart that has nature-like dimensions. A simplified 3D model of a human heart with its aortic root was created in silico using the SolidWorks Computer-Aided Design (CAD) program. This heart model was printed using a rapid prototyping system developed by the Fab@Home project and dip-coated two times with dispersion silicone. The translucency of the heart model allows the perception of the deployment area of the valved-stent without using heavy imaging support. The final model was then placed in a human manikin for surgical training on trans-apical AVR procedure. Trans-apical AVR with all the necessary steps (puncture, wiring, catheterization, ballooning etc.) can be realized repeatedly in this setting.
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Abdel-Sayed et al. (2009) studied Trans-apical aortic valve replacement (AVR) training. 3D-printed translucent artificial heart model was evaluated on Feasibility of surgical training on trans-apical AVR procedure. A translucent 3D-printed artificial heart model was successfully developed and placed in a human manikin to allow repeated surgical training for trans-apical aortic valve replacement procedures.
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