Challenges and Possibilities of Cell-Based Tissue-Engineered Vascular Grafts

被引:29
作者
Saito, Junichi [1 ,2 ]
Kaneko, Makoto [3 ]
Ishikawa, Yoshihiro [2 ]
Yokoyama, Utako [1 ,2 ]
机构
[1] Tokyo Med Univ, Dept Physiol, Shinjuku Ku, Tokyo, Japan
[2] Yokohama City Univ, Cardiovasc Res Inst, Yokohama, Kanagawa, Japan
[3] Meijo Univ, Fac Sci & Technol, Nagoya, Aichi, Japan
来源
CYBORG AND BIONIC SYSTEMS | 2021年 / 2021卷
基金
日本学术振兴会;
关键词
MESENCHYMAL STEM-CELLS; SMOOTH-MUSCLE-CELLS; BLOOD-VESSELS; MECHANICAL-PROPERTIES; HYDROSTATIC-PRESSURE; EXTRACELLULAR-MATRIX; ELASTOMERIC SCAFFOLD; HEMODIALYSIS ACCESS; ENDOTHELIAL-CELLS; DNA-SYNTHESIS;
D O I
10.34133/2021/1532103
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
There is urgent demand for biologically compatible vascular grafts for both adult and pediatric patients. The utility of conventional nonbiodegradable materials is limited because of their thrombogenicity and inability to grow, while autologous vascular grafts involve considerable disadvantages, including the invasive procedures required to obtain these healthy vessels from patients and insufficient availability in patients with systemic atherosclerosis. All of these issues could be overcome by tissue-engineered vascular grafts (TEVGs). A large body of evidence has recently emerged in support of TEVG technologies, introducing diverse cell sources (e.g., somatic cells and stem cells) and novel fabrication methods (e.g., scaffold-guided and self-assembled approaches). Before TEVG can be applied in a clinical setting, however, several aspects of the technology must be improved, such as the feasibility of obtaining cells, their biocompatibility and mechanical properties, and the time needed for fabrication, while the safety of supplemented materials, the patency and nonthrombogenicity of TEVGs, their growth potential, and the long-term influence of implanted TEVGs in the body must be assessed. Although recent advances in TEVG fabrication have yielded promising results, more research is needed to achieve the most feasible methods for generating optimal TEVGs. This article reviews multiple aspects of TEVG fabrication, including mechanical requirements, extracellular matrix components, cell sources, and tissue engineering approaches. The potential of periodic hydrostatic pressurization in the production of scaffold-free TEVGs with optimal elasticity and stiffness is also discussed. In the future, the integration of multiple technologies is expected to enable improved TEVG performance.
引用
收藏
页数:16
相关论文
共 126 条
[1]   Novel Mechanisms of Endothelial Mechanotransduction [J].
Abe, Jun-ichi ;
Berk, Bradford C. .
ARTERIOSCLEROSIS THROMBOSIS AND VASCULAR BIOLOGY, 2014, 34 (11) :2378-2386
[2]   Mesenchymal stem cells and the artery wall [J].
Abedin, M ;
Tintut, Y ;
Demer, LL .
CIRCULATION RESEARCH, 2004, 95 (07) :671-676
[3]   Human mesenchymal stem cells modulate allogeneic immune cell responses [J].
Aggarwal, S ;
Pittenger, MF .
BLOOD, 2005, 105 (04) :1815-1822
[4]   Cryopreservation method for spheroids and fabrication of scaffold-free tubular constructs [J].
Arai, Kenichi ;
Murata, Daiki ;
Takao, Shoko ;
Verissiomo, Ana Raquel ;
Nakayama, Koichi .
PLOS ONE, 2020, 15 (04)
[5]   PLATELET THROMBUS FORMATION ON COLLAGEN TYPE-I - A MODEL OF DEEP VESSEL INJURY - INFLUENCE OF BLOOD RHEOLOGY, VONWILLEBRAND-FACTOR, AND BLOOD-COAGULATION [J].
BADIMON, L ;
BADIMON, JJ ;
TURITTO, VT ;
VALLABHAJOSULA, S ;
FUSTER, V .
CIRCULATION, 1988, 78 (06) :1431-1442
[6]  
Ballyk PD, 1998, J BIOMECH, V31, P229, DOI 10.1016/S0197-3975(97)00111-5
[7]  
Benjamin EJ, 2019, CIRCULATION, V139, pE56, DOI [10.1161/CIR.0000000000000659, 10.1161/CIR.0000000000000746]
[8]   From Microscale Devices to 3D Printing Advances in Fabrication of 3D Cardiovascular Tissues [J].
Borovjagin, Anton V. ;
Ogle, Brenda M. ;
Berry, Joel L. ;
Zhang, Jianyi .
CIRCULATION RESEARCH, 2017, 120 (01) :150-165
[9]   Human fibroblast-derived ECM as a scaffold for vascular tissue engineering [J].
Bourget, Jean-Michel ;
Gauvin, Robert ;
Larouche, Danielle ;
Lavoie, Amelie ;
Labbe, Raymond ;
Auger, Francois A. ;
Germain, Lucie .
BIOMATERIALS, 2012, 33 (36) :9205-9213
[10]   Mesenchymal stem/stromal cells as a pharmacological and therapeutic approach to accelerate angiogenesis [J].
Bronckaers, Annelies ;
Hilkens, Petra ;
Martens, Wendy ;
Gervois, Pascal ;
Ratajczak, Jessica ;
Struys, Tom ;
Lambrichts, Ivo .
PHARMACOLOGY & THERAPEUTICS, 2014, 143 (02) :181-196