Stana J, Grab M, Kargl R, Tsilimparis N
Department of Vascular Surgery, LMU University Hospital, Marchioninistr. 15, 81377, Munich, Germany.
Department of Cardiac Surgery, Ludwig Maximilians University, Munich, Germany.
Radiologie (Heidelb). 2022 Dec;62(Suppl 1):28-33. doi: 10.1007/s00117-022-01047-x. Epub 2022 Sep 16.
The introduction of 3D printing in the medical field led to new possibilities in the planning of complex procedures, as well as new ways of training junior physicians. Especially in the field of vascular interventions, 3D printing has a wide range of applications.
3D-printed models of aortic aneurysms can be used for procedural training of endovascular aortic repair (EVAR), which can help boost the physician's confidence in the procedure, leading to a better outcome for the patient. Furthermore, it allows for a better understanding of complex anatomies and pathologies. In addition to teaching applications, the field of pre-interventional planning benefits greatly from the addition of 3D printing. Especially in the preparation for a complex endovascular aortic repair, prior orientation and test implantation of the stent grafts can further improve outcomes and reduce complications. For both teaching and planning applications, high-quality imaging datasets are required that can be transferred into a digital 3D model and subsequently printed in 3D. Thick slice thickness or suboptimal contrast agent phase can reduce the overall detail of the digital model, possibly concealing crucial anatomical details.
Based on the digital 3D model created for 3D printing, another new visualization technique might see future applications in the field of vascular interventions: virtual reality (VR). It enables the physician to quickly visualize a digital 3D model of the patient's anatomy in order to assess possible complications during endovascular repair. Due to the short transfer time from the radiological dataset into the VR, this technique might see use in emergency situations, where there is no time to wait for a printed model.
3D打印技术引入医学领域,为复杂手术的规划带来了新的可能性,也为初级医师的培训提供了新方法。尤其是在血管介入领域,3D打印有着广泛的应用。
主动脉瘤的3D打印模型可用于血管腔内主动脉修复术(EVAR)的手术训练,有助于增强医师对该手术的信心,从而为患者带来更好的治疗效果。此外,它还能让人更好地理解复杂的解剖结构和病理情况。除了教学应用外,3D打印的加入也让介入前规划领域受益匪浅。特别是在准备复杂的血管腔内主动脉修复手术时,预先对支架移植物进行定位和测试植入可进一步改善治疗效果并减少并发症。对于教学和规划应用而言,都需要高质量的成像数据集,以便能将其转换为数字3D模型并随后进行3D打印。厚层切片厚度或造影剂期相不佳会降低数字模型的整体细节,可能会掩盖关键的解剖细节。
基于为3D打印创建的数字3D模型,另一种新的可视化技术——虚拟现实(VR),可能会在血管介入领域得到未来应用。它能让医师快速可视化患者解剖结构的数字3D模型,以便评估血管腔内修复过程中可能出现的并发症。由于从放射学数据集转换到VR的时间较短,这项技术可能会在紧急情况下得到应用,因为此时没有时间等待打印模型。