Measuring Force During Subpial Resection Procedure Using a Novel Ex Vivo Calf Brain Model With Integrated Sensor
Neurosurgery is a high-stakes surgical specialty where errors can result in significant morbidity. The amount of force applied simultaneously on the brain with multiple different instruments during complex neurosurgical procedures is a critical safety metric that, to the investigators' knowledge, has not been previously measured in a realistic operative environment.
The investigators have therefore developed a simulation platform integrating an ex vivo calf brain and a 3D-printed skull model attached to a force sensor capable of capturing real-time forces applied to the brain. A case series study will be conducted to evaluate the pattern of force applied. Medical students, neurosurgical residents, and staff neurosurgeons from McGill University will be recruited to perform subpial resections using our ex vivo calf brain simulation platform. The forces applied by the microscissors, bipolar forceps, and ultrasonic aspirator onto the brain will be captured. This study aims to demonstrate the spectrum of force applied during a neurosurgical procedure using an ex vivo calf brain model.
研究概览
地位
条件
详细说明
Background and Rationale: The subpial resection technique is a complex neurosurgical procedure that is essential for brain tumor and epilepsy surgery. However, opportunities for trainees to gain hands-on experience with this procedure without risk to patient safety are limited. The force applied on the brain during tool-tissue contact is a critical factor impacting patient safety. While virtual simulation platforms enable force monitoring, ex vivo animal brains cannot readily capture quantitative data. The investigators have therefore developed a prototype of a simulation platform that integrates a force sensor and a calf brain and can accurately detect real-time forces during simulated subpial resections. This study seeks to gauge the force spectrum using this ex vivo calf brain force detection system.
Hypothesis: The simulation platform will accurately measure forces applied by novice, intermediate, and expert participants with surgical instruments on an ex vivo calf brain during simulated subpial resection procedures.
Co-Primary Outcomes: To assess the individual and combined instrumental force applications during subpial resection procedures in an ex vivo calf brain model.
Secondary Outcome: To differentiate levels of expertise of trial participants.
Setting: Montreal Neurological Institute and Hospital, McGill University, Montreal, Quebec, Canada.
Participants:
Neurosurgeons (experts): Staff neurosurgeons at McGill University specializing in oncology, epilepsy, pediatric, or vascular neurosurgery
Neurosurgical residents (trainees): Neurosurgical residents at McGill University
Medical students (novices): Students enrolled in medical school at McGill University
Design: A cross-sectional case series study.
Methodology: This study was approved by the McGill University Health Centre Research Ethics Board, Neurosciences-Psychiatry. A case series study will be conducted where medical students, neurosurgical residents, and staff neurosurgeons from McGill University will be recruited to perform subpial resection tasks on an ex vivo calf brain model. Calf brains will be placed in a 3D-printed skull model to mimic a realistic human operative environment. The 3D-printed skull model was prototyped from a publicly available CT scan obtained from Embodi3D, an open-access medical imaging repository, and reconstructed in 3D using the open-source software 3D Slicer version 5.10.0. A 6-degree-of-freedom force/torque sensor (Nano17 IP68, ATI Industrial Automation Inc., North Carolina, USA) and a USB data acquisition board (NI-6210, National Instruments Inc., Texas, USA) will be used to measure real-time forces applied to the brain. Participants will use microscissors, bipolar forceps, and a SONOPET ultrasonic aspirator (Stryker, Portage, Michigan, USA) to perform simulated procedures. The tasks will be performed using an OPMI pico surgical microscope (ZEISS, Jena, Germany) and video-recorded using a Blackfly S GigE embedded microscope camera (FLIR, Wilsonville, Oregon, USA), allowing a broader instrument view for evaluation of intraoperative and postoperative performance.
Study Procedure: Upon arrival, participants will read and sign an informed consent form. They will then fill out a pre-trial questionnaire assessing their demographic characteristics (e.g., sex, gender, age, institutional affiliation, etc.). Each participant will receive standardized instructions on instrument use and function and be presented with an image outlining the location of pial cuts and the subpial resections on the ex vivo calf brain in front of them. Participants will adjust the operating microscope according to their preferences. The subpial resection experiment will be divided into three subsequent tasks. The goal is to obtain a noise-free and specific force measurement for each of the major instruments/maneuvers in a standard subpial resection. The first task entails using microscissors to create a 2-cm pial cut in ten different gyri across a calf brain hemisphere (n = 10). The time allocated for this task is 30 seconds for each cut. The second task involves utilizing bipolar forceps to grasp and lift the edge of the pia where cuts are made with the microscissors in task 1. A repetitive lift and hold maneuver will be repeated five times assuming a right to left direction across the pial incision line in 5-second intervals using the left hand. This will be repeated across each of the ten different pial cuts (n = 50). The time allocated for this task is maximum of one minute for each pial defect. Finally, an ultrasonic aspirator in the dominant (right) hand along with the bipolar in the opposite hand will be employed to perform subpial resection at three out of the ten pial cuts originally made in task 1 (n = 3). Each of the three spots would undergo subpial resection for an allocated time of 3 minutes across separate recordings.
Significance: This study will provide the first insights into a realistic operative environment where it will be possible to monitor the force applied on the brain.
研究类型
注册 (实际的)
联系人和位置
学习地点
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Quebec
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Montreal、Quebec、加拿大、H3A 2B4
- Neuro Imaging and Surgical Technologies Lab, Department of Neurology and Neurosurgery, Montreal Neurological Institute and Hospital, McGill University
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参与标准
资格标准
适合学习的年龄
- 成人
- 年长者
接受健康志愿者
取样方法
研究人群
描述
Inclusion Criteria:
- Right-handed medical students, neurosurgical residents, and staff neurosurgeons from McGill University
Exclusion Criteria:
- Left-handed individuals
学习计划
研究是如何设计的?
设计细节
研究衡量的是什么?
主要结果指标
结果测量 |
措施说明 |
大体时间 |
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Forces applied to the brain during each simulated subpial resection procedure step
大体时间:1 day of study
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Throughout each simulated ex vivo subpial resection procedure, forces applied to the brain during tool-tissue contact will be measured by the force/torque sensor in grams and Newtons.
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1 day of study
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合作者和调查者
调查人员
- 首席研究员:Rolando F. Del Maestro, MD, PhD、Neurosurgical Simulation and Artificial Intelligence Learning Centre, McGill University
- 研究主任:Amir Hooshiar, PhD、Surgical Performance Enhancement and Robotics Centre, McGill University
- 研究主任:D. Louis Collins, PhD、Neuro Imaging and Surgical Technologies Lab, McGill University
研究记录日期
研究主要日期
学习开始 (实际的)
初级完成 (实际的)
研究完成 (实际的)
研究注册日期
首次提交
首先提交符合 QC 标准的
首次发布 (实际的)
研究记录更新
最后更新发布 (实际的)
上次提交的符合 QC 标准的更新
最后验证
更多信息
与本研究相关的术语
其他研究编号
- 2018 4395, Trial 1
计划个人参与者数据 (IPD)
计划共享个人参与者数据 (IPD)?
IPD 共享支持信息类型
- 研究方案
- 树液
- 国际碳纤维联合会
- 分析代码
- 企业社会责任
药物和器械信息、研究文件
研究美国 FDA 监管的药品
研究美国 FDA 监管的设备产品
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