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    In Silico Performance of a Recellularized Tissue-Engineered Transcatheter Aortic Valve

    Source: Journal of Biomechanical Engineering:;2019:;volume( 141 ):;issue: 006::page 61004
    Author:
    Noble, Christopher
    ,
    Choe, Joshua
    ,
    Uthamaraj, Susheil
    ,
    Deherrera, Milton
    ,
    Lerman, Amir
    ,
    Young, Melissa
    DOI: 10.1115/1.4043209
    Publisher: American Society of Mechanical Engineers (ASME)
    Abstract: Commercially available heart valves have many limitations, such as a lack of remodeling, risk of calcification, and thromboembolic problems. Many state-of-the-art tissue-engineered heart valves (TEHV) rely on recellularization to allow remodeling and transition to mechanical behavior of native tissues. Current in vitro testing is insufficient in characterizing a soon-to-be living valve due to this change in mechanical response; thus, it is imperative to understand the performance of an in situ valve. However, due to the complex in vivo environment, this is difficult to accomplish. Finite element (FE) analysis has become a standard tool for modeling mechanical behavior of heart valves; yet, research to date has mostly focused on commercial valves. The purpose of this study has been to evaluate the mechanical behavior of a TEHV material before and after 6 months of implantation in a rat subdermis model. This model allows the recellularization and remodeling potential of the material to be assessed via a simple and inexpensive means prior to more complex ovine orthotropic studies. Biaxial testing was utilized to evaluate the mechanical properties, and subsequently, constitutive model parameters were fit to the data to allow mechanical performance to be evaluated via FE analysis of a full cardiac cycle. Maximum principal stresses and strains from the leaflets and commissures were then analyzed. The results of this study demonstrate that the explanted tissues had reduced mechanical strength compared to the implants but were similar to the native tissues. For the FE models, this trend was continued with similar mechanical behavior in explant and native tissue groups and less compliant behavior in implant tissues. Histology demonstrated recellularization and remodeling although remodeled collagen had no clear directionality. In conclusion, we observed successful recellularization and remodeling of the tissue giving confidence to our TEHV material; however, the mechanical response indicates the additional remodeling would likely occur in the aortic/pulmonary position.
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      In Silico Performance of a Recellularized Tissue-Engineered Transcatheter Aortic Valve

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    contributor authorNoble, Christopher
    contributor authorChoe, Joshua
    contributor authorUthamaraj, Susheil
    contributor authorDeherrera, Milton
    contributor authorLerman, Amir
    contributor authorYoung, Melissa
    date accessioned2019-09-18T09:06:37Z
    date available2019-09-18T09:06:37Z
    date copyright4/22/2019 12:00:00 AM
    date issued2019
    identifier issn0148-0731
    identifier otherbio_141_06_061004
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4258973
    description abstractCommercially available heart valves have many limitations, such as a lack of remodeling, risk of calcification, and thromboembolic problems. Many state-of-the-art tissue-engineered heart valves (TEHV) rely on recellularization to allow remodeling and transition to mechanical behavior of native tissues. Current in vitro testing is insufficient in characterizing a soon-to-be living valve due to this change in mechanical response; thus, it is imperative to understand the performance of an in situ valve. However, due to the complex in vivo environment, this is difficult to accomplish. Finite element (FE) analysis has become a standard tool for modeling mechanical behavior of heart valves; yet, research to date has mostly focused on commercial valves. The purpose of this study has been to evaluate the mechanical behavior of a TEHV material before and after 6 months of implantation in a rat subdermis model. This model allows the recellularization and remodeling potential of the material to be assessed via a simple and inexpensive means prior to more complex ovine orthotropic studies. Biaxial testing was utilized to evaluate the mechanical properties, and subsequently, constitutive model parameters were fit to the data to allow mechanical performance to be evaluated via FE analysis of a full cardiac cycle. Maximum principal stresses and strains from the leaflets and commissures were then analyzed. The results of this study demonstrate that the explanted tissues had reduced mechanical strength compared to the implants but were similar to the native tissues. For the FE models, this trend was continued with similar mechanical behavior in explant and native tissue groups and less compliant behavior in implant tissues. Histology demonstrated recellularization and remodeling although remodeled collagen had no clear directionality. In conclusion, we observed successful recellularization and remodeling of the tissue giving confidence to our TEHV material; however, the mechanical response indicates the additional remodeling would likely occur in the aortic/pulmonary position.
    publisherAmerican Society of Mechanical Engineers (ASME)
    titleIn Silico Performance of a Recellularized Tissue-Engineered Transcatheter Aortic Valve
    typeJournal Paper
    journal volume141
    journal issue6
    journal titleJournal of Biomechanical Engineering
    identifier doi10.1115/1.4043209
    journal fristpage61004
    journal lastpage061004-12
    treeJournal of Biomechanical Engineering:;2019:;volume( 141 ):;issue: 006
    contenttypeFulltext
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