Elisei Radu Claudiu, Graur Florin, Melzer Andreas, Moldovan Sever Calin, Tiu Calin, Popa Calin, Mois Emil, Pisla Doina, Vaida Calin, Ștefănescu Horia, Coțe Adrian, Al-Hajjar Nadim
Department of Surgery, University of Medicine and Pharmacy "Iuliu Hatieganu", 400012 Cluj-Napoca, Romania.
Emergency County Hospital, 420016 Bistrita, Romania.
Diagnostics (Basel). 2024 Jul 15;14(14):1521. doi: 10.3390/diagnostics14141521.
Image-guided invasive procedures on the liver require a steep learning curve to acquire the necessary skills. The best and safest way to achieve these skills is through hands-on courses that include simulations and phantoms of different complications, without any risks for patients. There are many liver phantoms on the market made of various materials; however, there are few multimodal liver phantoms, and only two are cast in a 3D-printed mold.
We created a virtual liver and 3D-printed mold by segmenting a CT scan. The InVesalius and Autodesk Fusion 360 software packages were used for segmentation and 3D modeling. Using this modular mold, we cast and tested silicone- and gelatin-based liver phantoms with tumor and vascular formations inside. We tested the gelatin liver phantoms for several procedures, including ultrasound diagnosis, elastography, fibroscan, ultrasound-guided biopsy, ultrasound-guided drainage, ultrasound-guided radio-frequency ablation, CT scan diagnosis, CT-ultrasound fusion, CT-guided biopsy, and MRI diagnosis. The phantoms were also used in hands-on ultrasound courses at four international congresses.
We evaluated the feedback of 33 doctors regarding their experiences in using and learning on liver phantoms to validate our model for training in ultrasound procedures.
We validated our liver phantom solution, demonstrating its positive impact on the education of young doctors who can safely learn new procedures thus improving the outcomes of patients with different liver pathologies.
肝脏的图像引导侵入性操作需要经历陡峭的学习曲线才能掌握必要技能。掌握这些技能的最佳且最安全的方法是通过实践课程,其中包括不同并发症的模拟和模型,且对患者没有任何风险。市场上有许多由各种材料制成的肝脏模型;然而,多模态肝脏模型很少,只有两个是用3D打印模具铸造的。
我们通过分割CT扫描创建了一个虚拟肝脏和3D打印模具。使用InVesalius和Autodesk Fusion 360软件包进行分割和3D建模。使用这个模块化模具,我们铸造并测试了内部有肿瘤和血管结构的基于硅胶和明胶的肝脏模型。我们对明胶肝脏模型进行了多种操作测试,包括超声诊断、弹性成像、肝脏硬度值测定、超声引导下活检、超声引导下引流、超声引导下射频消融、CT扫描诊断、CT-超声融合、CT引导下活检和MRI诊断。这些模型还在四个国际大会的实践超声课程中使用。
我们评估了33名医生关于他们使用和学习肝脏模型的经验的反馈,以验证我们在超声操作培训方面的模型。
我们验证了我们的肝脏模型解决方案,证明了其对年轻医生教育的积极影响,这些医生可以安全地学习新操作,从而改善不同肝脏疾病患者的治疗效果。