Rosa Benoit, Machaidze Zurab, Shin Borami, Manjila Sunil, Brown David W, Baird Christopher W, Mayer John E, Dupont Pierre E
Department of Cardiac Surgery, Boston Children's Hospital, Boston, MA, USA.
Interact Cardiovasc Thorac Surg. 2017 Nov 1;25(5):785-792. doi: 10.1093/icvts/ivx189.
This paper provides detailed instructions for constructing low-cost bioprosthetic semilunar valves for animal research and clinical training. This work fills an important gap between existing simulator training valves and clinical valves by providing fully functioning designs that can be employed in ex vivo and in vivo experiments and can also be modified to model valvular disease.
Valves are constructed in 4 steps consisting of creating a metal frame, covering it with fabric and attaching a suture ring and leaflets. Computer-aided design files are provided for making the frame from wire or by metal 3D printing. The covering fabric and suturing ring are made from materials readily available in a surgical lab, while the leaflets are made from pericardium. The entire fabrication process is described in figures and in a video. To demonstrate disease modelling, design modifications are described for producing paravalvular leaks, and these valves were evaluated in porcine ex vivo (n = 3) and in vivo (n = 6) experiments.
Porcine ex vivo and acute in vivo experiments demonstrate that the valves can replicate the performance of clinical valves for research and training purposes. Surgical implantation is similar, and echocardiograms are comparable to clinical valves. Furthermore, valve leaflet function was satisfactory during acute in vivo tests with little central regurgitation, while the paravalvular leak modifications consistently produced leaks in the desired locations.
The detailed design procedure presented here, which includes a tutorial video and computer-aided design files, should be of substantial benefit to researchers developing valve disease models and to clinicians developing realistic valve training systems.
本文提供了构建用于动物研究和临床培训的低成本生物人工半月瓣的详细说明。这项工作通过提供可用于体外和体内实验且可进行修改以模拟瓣膜疾病的全功能设计,填补了现有模拟器训练瓣膜与临床瓣膜之间的重要空白。
瓣膜分4步构建,包括制作金属框架、用织物覆盖框架、连接缝合环和瓣叶。提供了计算机辅助设计文件,用于用金属丝或通过金属3D打印制作框架。覆盖织物和缝合环由手术实验室中容易获得的材料制成,而瓣叶由心包制成。整个制作过程在附图和视频中进行了描述。为了演示疾病建模,描述了用于产生瓣周漏的设计修改,并在猪体外(n = 3)和体内(n = 6)实验中对这些瓣膜进行了评估。
猪体外和急性体内实验表明,这些瓣膜可复制临床瓣膜的性能用于研究和培训目的。手术植入过程相似,超声心动图与临床瓣膜相当。此外,在急性体内测试期间,瓣叶功能令人满意,中心反流很少,而瓣周漏的修改始终在所需位置产生漏血。
本文介绍的详细设计程序,包括教学视频和计算机辅助设计文件,应会对开发瓣膜疾病模型的研究人员和开发逼真瓣膜训练系统的临床医生有很大帮助。