Development of an in vivo tissue-engineered vascular graft with designed wall thickness (biotube type C) based on a novel caged mold

被引:0
作者
Maya Furukoshi
Takeshi Moriwaki
Yasuhide Nakayama
机构
[1] National Cerebral and Cardiovascular Center Research Institute,Division of Medical Engineering and Materials
来源
Journal of Artificial Organs | 2016年 / 19卷
关键词
Small-diameter; Vascular grafts; Biotube; In vivo tissue engineering;
D O I
暂无
中图分类号
学科分类号
摘要
Small-diameter biotube vascular grafts developed by in-body tissue architecture had high patency at implantation into rabbit carotid arteries or rat abdominal aortas. However, the thin walls (34 ± 14 μm) of the original biotubes made their implantation difficult into areas with low blood flow volumes or low blood pressure due to insufficient mechanical strength to maintain luminal shape. In this study, caged molds with several windows were designed to prepare more robust biotubes. The molds were assembled with silicone tubes (external diameter 2 mm) and cylindrical covers (outer diameter 7 mm) with 12 linear windows (1 × 9 mm). After the molds were embedded into beagle dorsal subcutaneous pouches for 4 weeks, type C (cage) biotubes were obtained by completely extracting the surrounding connective tissues from the molds and removing the molds. The biotube walls (778 ± 31 μm) were formed at the aperture (width 1 mm) between the silicone rods and the covers by connective cell migration through the windows of the covers. Excellent mechanical properties (external pressure resistance, approximately 4 times higher than beagle native femoral arteries; burst strength, approximately 2 times higher than original biotubes) were obtained. In the acute phase of implantation of the biotubes into beagle femoral arteries, perfect patency was obtained with little stenosis and no aneurysmal dilation. The type C biotubes may be useful for implantation into peripheral arteries or veins in addition to aortas.
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页码:54 / 61
页数:7
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[1]  
Esquivel CO(1986)Why small vascular grafts fail: a review of clinical and experimental experience and the significance of the interaction of blood at the interface J Surg Res 41 1-15
[2]  
Blaisdell FW(2011)Long-term animal implantation study of biotube-autologous small-caliber vascular graft fabricated by in-body tissue architecture J Biomed Mater Res B Appl Biomater 98 120-126
[3]  
Watanabe T(2013)Implantation study of small-caliber “biotube” vascular grafts in a rat model J Artif Organs 16 59-65
[4]  
Kanda K(2009)Faster and stronger vascular “Biotube” graft fabrication in vivo using a novel nicotine-containing mold J Biomed Mater Res B Appl Biomater 90 412-420
[5]  
Yamanami M(2014)Acceleration of robust “biotube” vascular graft fabrication by in-body tissue architecture technology using novel eosin Y-releasing mold J Biomed Mater Res B Appl Biomater 102 231-238
[6]  
Ishibashi-Ueda H(2007)Development of the wing-attached rod for acceleration of “Biotube” vascular grafts fabrication in vivo J Biomed Mater Res B Appl Biomater 83 240-247
[7]  
Yaku H(2010)In-body optical stimulation formed connective tissue vascular grafts, “biotubes”, with many capillaries and elastic fibers J Artif Organs 13 235-240
[8]  
Nakayama Y(1980)Stiffness and elastic behavior of human intracranial and extracranial arteries J Biomech 13 175-184
[9]  
Yamanami M(1985)Material test system for the evaluation of mechanical properties of biomaterials J Biomed Mater Res 19 133-144
[10]  
Ishibashi-Ueda H(2015)In-body tissue-engineered aortic valve (Biovalve type VII) architecture based on 3D printer molding J Biomed Mater Res B Appl Biomater 103 1-11