Abstract
Abstract
Background
Due to its complexity and to existing treatment alternatives, exposure to intracranial aneurysm microsurgery at the time of neurosurgical residency is limited. The current state of the art includes training methods like assisting in surgeries, operating under supervision, and video training. These approaches are labor-intensive and difficult to fit into a timetable limited by the new work regulations. Existing virtual reality (VR)–based training modules lack patient-specific exercises and haptic properties and are thus inferior to hands-on training sessions and exposure to real surgical procedures.
Materials and methods
We developed a physical simulator able to reproduce the experience of clipping an intracranial aneurysm based on a patient-specific 3D-printed model of the skull, brain, and arteries. The simulator is made of materials that not only imitate tissue properties including arterial wall patency, thickness, and elasticity but also able to recreate a pulsatile blood flow. A sample group of 25 neurosurgeons and residents (n = 16: early residency with less than 4 years of neurosurgical exposure; n = 9: late residency and board-certified neurosurgeons, 4–15 years of neurosurgical exposure) took part to the study. Participants evaluated the simulator and were asked to answer questions about surgical simulation anatomy, realism, haptics, tactility, and general usage, scored on a 5-point Likert scale. In order to evaluate the feasibility of a future validation study on the role of the simulator in neurosurgical postgraduate training, an expert neurosurgeon assessed participants’ clipping performance and a comparison between groups was done.
Results
The proposed simulator is reliable and potentially useful for training neurosurgical residents and board-certified neurosurgeons. A large majority of participants (84%) found it a better alternative than conventional neurosurgical training methods.
Conclusion
The integration of a new surgical simulator including blood circulation and pulsatility should be considered as part of the future armamentarium of postgraduate education aimed to ensure high training standards for current and future generations of neurosurgeons involved in intracranial aneurysm surgery.
Publisher
Springer Science and Business Media LLC
Subject
Clinical Neurology,Surgery
Reference39 articles.
1. Belykh EG, Byval'tsev VA, Nakadzhi P, Lei T, Oliviero MM, Nikiforov SB (2014) [A model of the arterial aneurysm of the brain for microneurosurgical training]. Zh Vopr Neirokhir Im N N Burdenko 78(2):40–5– discussion 45
2. Kang Y, Yu L-H, Xu T, Zheng S-F, Yao P-S, Liu M, Lin Y-X, Lin Z-Y, Fan X-M, Kang D-Z (2016) Three-dimensional printing technology for treatment of intracranial aneurysm. Chin Neurosurg Jl 2(1):1–10
3. Vakharia VN, Vakharia NN, Hill CS (2016) Review of 3-dimensional printing on cranial neurosurgery simulation training. World Neurosurg 88:188–198
4. Dewan MC, Rattani A, Fieggen G, Arraez MA, Servadei F, Boop FA, Johnson WD, Warf BC, Park KB (2018) Global neurosurgery: the current capacity and deficit in the provision of essential neurosurgical care. Executive Summary of the Global Neurosurgery Initiative at the Program in Global Surgery and Social Change. J Neurosurg 130(4):1055–1064
5. Kirkman MA, Ahmed M, Albert AF, Wilson MH, Nandi D, Sevdalis N (2014) The use of simulation in neurosurgical education and training. A systematic review. J Neurosurg 121(2):228–246
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