Literature DB >> 28973685

Microsurgery Simulator of Cerebral Aneurysm Clipping with Interactive Cerebral Deformation Featuring a Virtual Arachnoid.

Naoyuki Shono1, Taichi Kin1, Seiji Nomura1, Satoru Miyawaki1, Toki Saito2, Hideaki Imai1, Hirofumi Nakatomi1, Hiroshi Oyama2, Nobuhito Saito1.   

Abstract

BACKGROUND: A virtual reality simulator for aneurysmal clipping surgery is an attractive research target for neurosurgeons. Brain deformation is one of the most important functionalities necessary for an accurate clipping simulator and is vastly affected by the status of the supporting tissue, such as the arachnoid membrane. However, no virtual reality simulator implementing the supporting tissue of the brain has yet been developed.
OBJECTIVE: To develop a virtual reality clipping simulator possessing interactive brain deforming capability closely dependent on arachnoid dissection and apply it to clinical cases.
METHODS: Three-dimensional computer graphics models of cerebral tissue and surrounding structures were extracted from medical images. We developed a new method for modifiable cerebral tissue complex deformation by incorporating a nonmedical image-derived virtual arachnoid/trabecula in a process called multitissue integrated interactive deformation (MTIID). MTIID made it possible for cerebral tissue complexes to selectively deform at the site of dissection. Simulations for 8 cases of actual clipping surgery were performed before surgery and evaluated for their usefulness in surgical approach planning.
RESULTS: Preoperatively, each operative field was precisely reproduced and visualized with the virtual brain retraction defined by users. The clear visualization of the optimal approach to treating the aneurysm via an appropriate arachnoid incision was possible with MTIID.
CONCLUSION: A virtual clipping simulator mainly focusing on supporting tissues and less on physical properties seemed to be useful in the surgical simulation of cerebral aneurysm clipping. To our knowledge, this article is the first to report brain deformation based on supporting tissues.

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Year:  2018        PMID: 28973685     DOI: 10.1093/ons/opx155

Source DB:  PubMed          Journal:  Oper Neurosurg (Hagerstown)        ISSN: 2332-4252            Impact factor:   2.703


  2 in total

1.  Operative Anatomy of the Skull Base: 3D Exploration with a Highly Detailed Interactive Atlas.

Authors:  Ralf A Kockro; Eike Schwandt; Florian Ringel; Christian Valentin Eisenring; Wieslaw Lucjan Nowinski
Journal:  J Neurol Surg B Skull Base       Date:  2021-06-03

2.  VR-based training of craniotomy for intracranial aneurysm surgery.

Authors:  Mareen Allgaier; Amir Amini; Belal Neyazi; I Erol Sandalcioglu; Bernhard Preim; Sylvia Saalfeld
Journal:  Int J Comput Assist Radiol Surg       Date:  2021-12-20       Impact factor: 2.924

  2 in total

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