Kaschwich M, Dell A, Matysiak F, Bouchagiar J, Bayer A, Scharfschwerdt M, Ernst F, Kleemann M, Horn M
Department of Surgery, Division of Vascular and Endovascular Surgery, University Medical Center Schleswig-Holstein, Campus Lübeck, Ratzeburger Allee 160, 23538, Lübeck, Germany.
Department of Surgery, Division of Vascular and Endovascular Surgery, University Medical Center Schleswig-Holstein, Campus Lübeck, Ratzeburger Allee 160, 23538, Lübeck, Germany.
Ann Anat. 2020 Nov;232:151563. doi: 10.1016/j.aanat.2020.151563. Epub 2020 Jun 23.
Today, ultrasound-guided peripheral endovascular interventions have the potential to be an alternative to conventional interventions that are still X-ray and contrast agent based. For the further development of this approach, a research environment is needed that represents the individual patient-specific endovascular properties as realistically as possible. Aim of the project was the construction of a phantom that combines ultrasound capabilities and the possibility to simulate peripheral endovascular interventions.
We designed a modular ultrasound-capable phantom with exchangeable patient specific vascular anatomy. For the manufacturing of the vascular pathologies, we used 3D printing technology. Subsequently, we evaluated the constructed simulator with regards to its application for endovascular development projects.
We developed an ultrasound-capable phantom with an exchangeable 3D-printed segment of the femoral artery. This modality allows the study of several patient-specific 3D-printed pathologies. Compared to the flow properties of a human artery (male; age 28) the phantom shows realistic flow properties in the duplex ultrasound image. We proved the feasibility of the simulator by performing an ultrasound-guided endovascular procedure. Overall, the simulator showed realistic intervention conditions.
With the help of the constructed simulator, new endovascular procedures and navigation systems, such as ultrasound-guided peripheral vascular interventions, can be further developed. Additionally, in our opinion, the use of such simulators can also reduce the need for animal experiments.
如今,超声引导下的外周血管腔内介入治疗有可能成为传统介入治疗的替代方法,传统介入治疗仍基于X射线和造影剂。为了该方法的进一步发展,需要一个尽可能真实地反映个体患者特定血管腔内特性的研究环境。该项目的目的是构建一个结合超声功能和模拟外周血管腔内介入治疗可能性的模型。
我们设计了一种具有可更换患者特定血管解剖结构的模块化超声模型。对于血管病变的制造,我们使用了3D打印技术。随后,我们评估了构建的模拟器在血管腔内开发项目中的应用。
我们开发了一种具有可更换的3D打印股动脉段的超声模型。这种模型允许研究几种患者特定的3D打印病变。与一名28岁男性人类动脉的血流特性相比,该模型在双功超声图像中显示出逼真的血流特性。我们通过进行超声引导下的血管腔内手术证明了模拟器的可行性。总体而言,该模拟器显示出逼真的介入条件。
借助构建的模拟器,可以进一步开发新的血管腔内手术和导航系统,如超声引导下的外周血管介入治疗。此外,我们认为,使用这种模拟器还可以减少动物实验的需求。