Mechanical modeling of the maturation process for tissue-engineered implants: Application to biohybrid heart valves

被引:2
作者
Sesa, Mahmoud [1 ]
Holthusen, Hagen [1 ]
Lamm, Lukas [1 ]
Boehm, Christian [2 ]
Brepols, Tim [1 ]
Jockenhoevel, Stefan [2 ]
Reese, Stefanie [1 ]
机构
[1] Rhein Westfal TH Aachen, Inst Appl Mech, Mies Van Der Rohe Str 1, D-52074 Aachen, Germany
[2] Rhein Westfal TH Aachen, Inst Appl Med Engn, Biohybrid & Med Text, Forckenbeckstr 55, D-52074 Aachen, Germany
关键词
Regenerative medicine; Tissue-engineered heart valves (TEHVs); Finite element method; Growth modeling; Anisotropy; COLLAGEN; GROWTH; THERMODYNAMICS; GENERATION; TURNOVER; PROGRESS;
D O I
10.1016/j.compbiomed.2023.107623
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
The development of tissue-engineered cardiovascular implants can improve the lives of large segments of our society who suffer from cardiovascular diseases. Regenerative tissues are fabricated using a process called tissue maturation. Furthermore, it is highly challenging to produce cardiovascular regenerative implants with sufficient mechanical strength to withstand the loading conditions within the human body. Therefore, biohybrid implants for which the regenerative tissue is reinforced by standard reinforcement material (e.g. textile or 3d printed scaffold) can be an interesting solution. In silico models can significantly contribute to characterizing, designing, and optimizing biohybrid implants. The first step towards this goal is to develop a computational model for the maturation process of tissue-engineered implants. This paper focuses on the mechanical modeling of textile-reinforced tissue-engineered cardiovascular implants. First, an energy-based approach is proposed to compute the collagen evolution during the maturation process. Then, the concept of structural tensors is applied to model the anisotropic behavior of the extracellular matrix and the textile scaffold. Next, the newly developed material model is embedded into a special solid-shell finite element formulation with reduced integration. Finally, our framework is used to compute two structural problems: a pressurized shell construct and a tubular-shaped heart valve. The results show the ability of the model to predict collagen growth in response to the boundary conditions applied during the maturation process. Consequently, the model can predict the implant's mechanical response, such as the deformation and stresses of the implant.
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页数:18
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