In vivo development of tissue engineered vascular grafts: a fluid-solid-growth model

被引:0
作者
Marcos Latorre
Jason M. Szafron
Abhay B. Ramachandra
Jay D. Humphrey
机构
[1] Yale University,Department of Biomedical Engineering
[2] Universitat Politècnica de València,Center for Research and Innovation in Bioengineering
[3] Stanford University,Departments of Pediatrics and Bioengineering
[4] Yale School of Medicine,Vascular Biology and Therapeutics Program
来源
Biomechanics and Modeling in Mechanobiology | 2022年 / 21卷
关键词
Tissue engineering; Fontan procedure; TEVG; Neovessel; Fluid-solid-growth;
D O I
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中图分类号
学科分类号
摘要
Methods of tissue engineering continue to advance, and multiple clinical trials are underway evaluating tissue engineered vascular grafts (TEVGs). Whereas initial concerns focused on suture retention and burst pressure, there is now a pressing need to design grafts to have optimal performance, including an ability to grow and remodel in response to changing hemodynamic loads. Toward this end, there is similarly a need for computational methods that can describe and predict the evolution of TEVG geometry, composition, and material properties while accounting for changes in hemodynamics. Although the ultimate goal is a fluid-solid-growth (FSG) model incorporating fully 3D growth and remodeling and 3D hemodynamics, lower fidelity models having high computational efficiency promise to play important roles, especially in the design of candidate grafts. We introduce here an efficient FSG model of in vivo development of a TEVG based on two simplifying concepts: mechanobiologically equilibrated growth and remodeling of the graft and an embedded control volume analysis of the hemodynamics. Illustrative simulations for a model Fontan conduit reveal the utility of this approach, which promises to be particularly useful in initial design considerations involving formal methods of optimization which otherwise add considerably to the computational expense.
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页码:827 / 848
页数:21
相关论文
共 269 条
[1]  
Ambrosi D(2019)Growth and remodelling of living tissues: perspectives, challenges and opportunities J R Soc Interface 16 20190233-1509
[2]  
Ben Amar M(2007)Biochemomechanics of cerebral vasospasm and its resolution: II. constitutive relations and model simulations Ann Biomed Eng 35 1498-243
[3]  
Cyron CJ(1995)Collagen fibrillogenesis in situ: Fibril segments undergo post-depositional modifications resulting in linear and lateral growth during matrix development Dev Dyn 202 229-664
[4]  
DeSimone A(2020)Total cavopulmonary connection with a new restorative vascular graft: results at 2 years J Thorac Dis 12 4168-1403
[5]  
Goriely A(2017)Growth and remodeling of load-bearing biological soft tissues Meccanica 52 645-3602
[6]  
Humphrey JD(2016)A homogenized constrained mixture (and mechanical analog) model for growth and remodeling of soft tissue Biomech Model Mechanobiol 15 1389-311
[7]  
Kuhl E(2020)Spontaneous reversal of stenosis in tissue-engineered vascular grafts Sci Trans Med 12 eaax6919-436
[8]  
Baek S(2018)Computational modeling guides tissue-engineered heart valve design for long-term in vivo performance in a translational sheep model Sci Transl Med 10 eaan4587-430
[9]  
Valentín A(2009)A computational framework for fluid-solid-growth modeling in cardiovascular simulations Comput Methods Appl Mech Eng 198 3583-1538
[10]  
Humphrey JD(2020)Multilevel and multifidelity uncertainty quantification for cardiovascular hemodynamics Comput Methods Appl Mech Eng 365 113030-2071