Nakayama Yasuhide, Takewa Yoshiaki, Sumikura Hirohito, Yamanami Masashi, Matsui Yuichi, Oie Tomonori, Kishimoto Yuichiro, Arakawa Mamoru, Ohmuma Kentaro, Tajikawa Tsutomu, Kanda Keiichi, Tatsumi Eisuke
Division of Medical Engineering and Materials, National Cerebral and Cardiovascular Center Research Institute, Osaka, Japan.
J Biomed Mater Res B Appl Biomater. 2015 Jan;103(1):1-11. doi: 10.1002/jbm.b.33186. Epub 2014 Apr 25.
In-body tissue architecture--a novel and practical regeneration medicine technology--can be used to prepare a completely autologous heart valve, based on the shape of a mold. In this study, a three-dimensional (3D) printer was used to produce the molds. A 3D printer can easily reproduce the 3D-shape and size of native heart valves within several processing hours. For a tri-leaflet, valved conduit with a sinus of Valsalva (Biovalve type VII), the mold was assembled using two conduit parts and three sinus parts produced by the 3D printer. Biovalves were generated from completely autologous connective tissue, containing collagen and fibroblasts, within 2 months following the subcutaneous embedding of the molds (success rate, 27/30). In vitro evaluation, using a pulsatile circulation circuit, showed excellent valvular function with a durability of at least 10 days. Interposed between two expanded polytetrafluoroethylene grafts, the Biovalves (N = 3) were implanted in goats through an apico-aortic bypass procedure. Postoperative echocardiography showed smooth movement of the leaflets with minimal regurgitation under systemic circulation. After 1 month of implantation, smooth white leaflets were observed with minimal thrombus formation. Functional, autologous, 3D-shaped heart valves with clinical application potential were formed following in-body embedding of specially designed molds that were created within several hours by 3D printer.
体内组织构建——一种新颖且实用的再生医学技术——可用于根据模具形状制备完全自体的心脏瓣膜。在本研究中,使用三维(3D)打印机制作模具。3D打印机能够在数小时内轻松复制天然心脏瓣膜的三维形状和尺寸。对于带有主动脉窦的三叶瓣带瓣管道(Biovalve VII型),模具由3D打印机制作的两个管道部件和三个窦部件组装而成。在模具皮下植入后2个月内,从完全自体的结缔组织(包含胶原蛋白和成纤维细胞)生成了Biovalve(成功率为27/30)。使用脉动循环回路进行的体外评估显示瓣膜功能良好,耐久性至少为10天。将Biovalve(N = 3)置于两个膨体聚四氟乙烯移植物之间,通过心尖 - 主动脉旁路手术植入山羊体内。术后超声心动图显示在体循环下瓣叶运动顺畅,反流极少。植入1个月后,观察到瓣叶光滑呈白色,血栓形成极少。通过3D打印机在数小时内制作的特殊设计模具进行体内植入后,形成了具有临床应用潜力的功能性、自体、三维形状的心脏瓣膜。