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建立具有综合人体性能监测功能的下一代神经外科研究与培训实验室。

Establishment of Next-Generation Neurosurgery Research and Training Laboratory with Integrated Human Performance Monitoring.

作者信息

Bernardo Antonio

机构信息

Department of Neurological Surgery, Weill Cornell Medical Center, New York Presbyterian Hospital, New York, New York, USA.

出版信息

World Neurosurg. 2017 Oct;106:991-1000. doi: 10.1016/j.wneu.2017.06.160.

Abstract

Quality of neurosurgical care and patient outcomes are inextricably linked to surgical and technical proficiency and a thorough working knowledge of microsurgical anatomy. Neurosurgical laboratory-based cadaveric training is essential for the development and refinement of technical skills before their use on a living patient. Recent biotechnological advances including 3-dimensional (3D) microscopy and endoscopy, 3D printing, virtual reality, surgical simulation, surgical robotics, and advanced neuroimaging have proved to reduce the learning curve, improve conceptual understanding of complex anatomy, and enhance visuospatial skills in neurosurgical training. Until recently, few means have allowed surgeons to obtain integrated surgical and technological training in an operating room setting. We report on a new model, currently in use at our institution, for technologically integrated surgical training and innovation using a next-generation microneurosurgery skull base laboratory designed to recreate the setting of a working operating room. Each workstation is equipped with a 3D surgical microscope, 3D endoscope, surgical drills, operating table with a Mayfield head holder, and a complete set of microsurgical tools. The laboratory also houses a neuronavigation system, a surgical robotic, a surgical planning system, 3D visualization, virtual reality, and computerized simulation for training of surgical procedures and visuospatial skills. In addition, the laboratory is equipped with neurophysiological monitoring equipment in order to conduct research into human factors in surgery and the respective roles of workload and fatigue on surgeons' performance.

摘要

神经外科护理质量和患者预后与手术及技术水平以及对显微外科解剖学的全面实用知识有着千丝万缕的联系。基于神经外科实验室的尸体训练对于在活体患者身上应用之前技术技能的发展和完善至关重要。包括三维(3D)显微镜和内窥镜检查、3D打印、虚拟现实、手术模拟、手术机器人技术以及先进神经成像在内的最新生物技术进展已证明可缩短学习曲线、提高对复杂解剖结构的概念理解,并增强神经外科训练中的视觉空间技能。直到最近,很少有方法能让外科医生在手术室环境中获得综合的手术和技术训练。我们报告一种目前在我们机构使用的新模型,用于利用设计用于重现实际手术室环境的下一代显微神经外科颅底实验室进行技术集成的手术训练和创新。每个工作站都配备有一台3D手术显微镜、3D内窥镜、手术钻、带有梅菲尔德头架的手术台以及一整套显微外科工具。该实验室还设有神经导航系统、手术机器人、手术规划系统、3D可视化、虚拟现实以及用于手术操作和视觉空间技能训练的计算机模拟。此外,该实验室配备了神经生理监测设备,以便对手术中的人为因素以及工作量和疲劳对外科医生表现的各自作用进行研究。

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