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Development and validation of a synthetic 3D-printed simulator for training in neuroendoscopic ventricular lesion removal

机译:综合3D印刷模拟器的开发与验证用于训练神经形态心室病变训练

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OBJECTIVE Neuroendoscopic surgery using an ultrasonic aspirator represents a valid tool with which to perform the safe resection of deep-seated ventricular lesions, but the handling of neuroendoscopic instruments is technically challenging, requiring extensive training to achieve a steep learning curve. Simulation-based methods are increasingly used to improve surgical skills, allowing neurosurgical trainees to practice in a risk-free, reproducible environment. The authors introduce a synthetic, patient-specific simulator that enables trainees to develop skills for endoscopic ventricular tumor removal, and they evaluate the model’s validity as a training instrument with regard to realism, mechanical proprieties, procedural content, and handling. METHODS The authors developed a synthetic simulator based on a patient-specific CT data set. The anatomical features were segmented, and several realistic 1:1 skull models with all relevant ventricular structures were fabricated by a 3D printer. Vascular structures and the choroid plexus were included. A tumor model, composed of polyvinyl alcohol, mimicking a soft-consistency lesion, was secured in different spots of the frontal horn and within the third ventricle. Neurosurgical trainees participating in a neuroendoscopic workshop qualitatively assessed, by means of a feedback survey, the properties of the simulator as a training model that teaches neuroendoscopic ultrasonic ventricular tumor surgery; the trainees rated 10 items according to a 5-point Likert scale. RESULTS Participants appreciated the model as a valid hands-on training tool for neuroendoscopic ultrasonic aspirator tumor removal, highly rating the procedural content. Furthermore, they mostly agreed on its comparably realistic anatomical and mechanical properties. By the model’s first application, the authors were able to recognize possible improvement measures, such as the development of different tumor model textures and the possibility, for the user, of creating a realistic surgical skull approach and neuroendoscopic trajectory. CONCLUSIONS A low-cost, patient-specific, reusable 3D-printed simulator for the training of neuroendoscopic ultrasonic aspirator tumor removal was successfully developed. The simulator is a useful tool for teaching neuroendoscopic techniques and provides support in the development of the required surgical skills.
机译:客观的神经形式手术手术使用超声波吸管代表了一种有效的工具,用于执行深层室外病变的安全切除,但是神经形态仪器的处理在技术上是具有挑战性的,需要进行广泛的训练来实现陡峭的学习曲线。基于仿真的方法越来越多地用于改善手术技能,使神经外科学员能够在无风险,可重复的环境中练习。作者介绍了一种合成的患者特异性模拟器,使学员能够培养内镜心室肿瘤去除的技能,并且他们将模型的有效性评估为具有现实主义,机械工作,程序内容和处理的培训工具。方法作者基于特定于患者的CT数据集开发了一种合成模拟器。解剖学特征被分段,并且通过3D打印机制造了几种现实1:1个具有所有相关心室结构的颅骨模型。包括血管结构和脉络丛。由聚乙烯醇组成的肿瘤模型,用于模仿软稠度病变,在额号角和第三脑室内的不同斑点中固定。通过反馈调查,参与定性评估的神经外科学员,通过反馈调查,作为教导神经形态超声室肿瘤手术的培训模型的模拟器的性质;根据5点李克特量表,学员评定了10件物品。结果参与者赞赏该模型作为神经形式超声波嗜睡肿瘤去除的有效实践培训工具,高度评价程序内容。此外,它们大多数商定了其相对现实的解剖和机械性能。通过该模型的第一个申请,作者能够识别可能的改进措施,例如不同肿瘤模型纹理的发展以及用户创造现实的外科颅骨方法和神经形态透镜轨迹的可能性。结论成功开发了一种低成本,特异性患者特异性可重复使用的3D印刷模拟器,用于训练神经形态超声波嗜睡肿瘤去除。模拟器是一种用于教学神经形态技术的有用工具,并在开发所需手术技能方面提供支持。

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