Development of in vivo tissue-engineered microvascular grafts with an ultra small diameter of 0.6 mm (MicroBiotubes): acute phase evaluation by optical coherence tomography and magnetic resonance angiography

被引:0
作者
Daizo Ishii
Jun-ichiro Enmi
Takeshi Moriwaki
Hastue Ishibashi-Ueda
Mari Kobayashi
Shinichi Iwana
Hidehiro Iida
Tetsu Satow
Jun C. Takahashi
Kaoru Kurisu
Yasuhide Nakayama
机构
[1] National Cerebral and Cardiovascular Center Research Institute,Division of Medical Engineering and Materials
[2] Hiroshima University Graduate School of Biomedical and Health Sciences,Department of Neurosurgery
[3] National Cerebral and Cardiovascular Center,Department of Neurosurgery
[4] National Cerebral and Cardiovascular Center Research Institute,Department of Investigative Radiology
[5] National Cerebral and Cardiovascular Center,Department of Pathology
[6] Panasonic Healthcare Co.,undefined
[7] Ltd,undefined
来源
Journal of Artificial Organs | 2016年 / 19卷
关键词
Biotube; Magnetic resonance angiography; Microvascular grafts; Optical coherence tomography; Tissue engineering;
D O I
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中图分类号
学科分类号
摘要
Biotubes, i.e., in vivo tissue-engineered connective tubular tissues, are known to be effective as vascular replacement grafts with a diameter greater than several millimeters. However, the performance of biotubes with smaller diameters is less clear. In this study, MicroBiotubes with diameters <1 mm were prepared, and their patency was evaluated noninvasively by optical coherence tomography (OCT) and magnetic resonance angiography (MRA). MicroBiotube molds, containing seven stainless wires (diameter 0.5 mm) covered with silicone tubes (outer diameter 0.6 mm) per mold, were embedded into the dorsal subcutaneous pouches of rats. After 2 months, the molds were harvested with the surrounding capsular tissues to obtain seven MicroBiotubes (internal diameter 0.59 ± 0.015 mm, burst pressure 4190 ± 1117 mmHg). Ten-mm-long MicroBiotubes were allogenically implanted into the femoral arteries of rats by end-to-end anastomosis. Cross-sectional OCT imaging demonstrated the patency of the MicroBiotubes immediately after implantation. In a 1-month follow-up MRA, high patency (83.3 %, n = 6) was observed without stenosis, aneurysmal dilation, or elongation. Native-like vascular structure was reconstructed with completely endothelialized luminal surfaces, mesh-like elastin fiber networks, regular circumferential orientation of collagen fibers, and α-SMA-positive cells. Although the long-term patency of MicroBiotubes still needs to be confirmed, they may be useful as an alternative ultra-small-caliber vascular substitute.
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页码:262 / 269
页数:7
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