Literature DB >> 27494814

A novel miniature robotic device for frameless implantation of depth electrodes in refractory epilepsy.

Christian Dorfer1, Georgi Minchev1, Thomas Czech1, Harald Stefanits1, Martha Feucht2, Ekaterina Pataraia3, Christoph Baumgartner4, Gernot Kronreif5, Stefan Wolfsberger1.   

Abstract

OBJECTIVE The authors' group recently published a novel technique for a navigation-guided frameless stereotactic approach for the placement of depth electrodes in epilepsy patients. To improve the accuracy of the trajectory and enhance the procedural workflow, the authors implemented the iSys1 miniature robotic device in the present study into this routine. METHODS As a first step, a preclinical phantom study was performed using a human skull model, and the accuracy and timing between 5 electrodes implanted with the manual technique and 5 with the aid of the robot were compared. After this phantom study showed an increased accuracy with robot-assisted electrode placement and confirmed the robot's ability to maintain stability despite the rotational forces and the leverage effect from drilling and screwing, patients were enrolled and analyzed for robot-assisted depth electrode placement at the authors' institution from January 2014 to December 2015. All procedures were performed with the S7 Surgical Navigation System with Synergy Cranial software and the iSys1 miniature robotic device. RESULTS Ninety-three electrodes were implanted in 16 patients (median age 33 years, range 3-55 years; 9 females, 7 males). The authors saw a significant increase in accuracy compared with their manual technique, with a median deviation from the planned entry and target points of 1.3 mm (range 0.1-3.4 mm) and 1.5 mm (range 0.3-6.7 mm), respectively. For the last 5 patients (31 electrodes) of this series the authors modified their technique in placing a guide for implantation of depth electrodes (GIDE) on the bone and saw a significant further increase in the accuracy at the entry point to 1.18 ± 0.5 mm (mean ± SD) compared with 1.54 ± 0.8 mm for the first 11 patients (p = 0.021). The median length of the trajectories was 45.4 mm (range 19-102.6 mm). The mean duration of depth electrode placement from the start of trajectory alignment to fixation of the electrode was 15.7 minutes (range 8.5-26.6 minutes), which was significantly faster than with the manual technique. In 12 patients, depth electrode placement was combined with subdural electrode placement. The procedure was well tolerated in all patients. The authors did not encounter any case of hemorrhage or neurological deficit related to the electrode placement. In 1 patient with a psoriasis vulgaris, a superficial wound infection was encountered. Adequate physiological recordings were obtained from all electrodes. No additional electrodes had to be implanted because of misplacement. CONCLUSIONS The iSys1 robotic device is a versatile and easy to use tool for frameless implantation of depth electrodes for the treatment of epilepsy. It increased the accuracy of the authors' manual technique by 60% at the entry point and over 30% at the target. It further enhanced and expedited the authors' procedural workflow.

Entities:  

Keywords:  EEG = electroencephalography; GIDE = guide for implantation of depth electrodes; RPU = robotic positioning unit; SEEG; depth electrodes; diagnostic and operative techniques; epilepsy; frameless stereotaxy; robot; stereo-electroencephalography

Mesh:

Year:  2016        PMID: 27494814     DOI: 10.3171/2016.5.JNS16388

Source DB:  PubMed          Journal:  J Neurosurg        ISSN: 0022-3085            Impact factor:   5.115


  15 in total

Review 1.  Accuracy of intracranial electrode placement for stereoencephalography: A systematic review and meta-analysis.

Authors:  Vejay N Vakharia; Rachel Sparks; Aidan G O'Keeffe; Roman Rodionov; Anna Miserocchi; Andrew McEvoy; Sebastien Ourselin; John Duncan
Journal:  Epilepsia       Date:  2017-03-06       Impact factor: 5.864

2.  A novel technique for fence-post tube placement in glioma using the robot-guided frameless neuronavigation technique under exoscope surgery: patient series.

Authors:  Shinichiro Koizumi; Yuki Shiraishi; Ippei Makita; Makoto Kadowaki; Tetsuro Sameshima; Kazuhiko Kurozumi
Journal:  J Neurosurg Case Lessons       Date:  2021-12-13

3.  Improving patient safety during introduction of novel medical devices through cumulative summation analysis.

Authors:  Vejay N Vakharia; Roman Rodionov; Andrew W McEvoy; Anna Miserocchi; Rachel Sparks; Aidan G O'Keeffe; Sebastien Ourselin; John S Duncan
Journal:  J Neurosurg       Date:  2018-02-16       Impact factor: 5.115

Review 4.  Stereoelectroencephalography: Indication and Efficacy.

Authors:  Koji Iida; Hiroshi Otsubo
Journal:  Neurol Med Chir (Tokyo)       Date:  2017-06-20       Impact factor: 1.742

5.  Stereoelectroencephalography based on the Leksell stereotactic frame and Neurotech operation planning software.

Authors:  Guangming Zhang; Guoqiang Chen; Dawei Meng; Yanwu Liu; Jianwei Chen; Lanmei Shu; Wenbo Liu
Journal:  Medicine (Baltimore)       Date:  2017-06       Impact factor: 1.889

6.  Automatic segmentation of stereoelectroencephalography (SEEG) electrodes post-implantation considering bending.

Authors:  Alejandro Granados; Vejay Vakharia; Roman Rodionov; Martin Schweiger; Sjoerd B Vos; Aidan G O'Keeffe; Kuo Li; Chengyuan Wu; Anna Miserocchi; Andrew W McEvoy; Matthew J Clarkson; John S Duncan; Rachel Sparks; Sébastien Ourselin
Journal:  Int J Comput Assist Radiol Surg       Date:  2018-05-07       Impact factor: 2.924

7.  Navigated, Robot-Driven Laser Craniotomy for SEEG Application Using Optical Coherence Tomography in an Animal Model.

Authors:  Fabian Winter; Tobias Wilken; Martin Bammerlin; Julia Shawarba; Christian Dorfer; Karl Roessler
Journal:  Front Robot AI       Date:  2021-06-30

8.  Neuronavigation-guided Frameless Stereoelectroencephalography (SEEG).

Authors:  Ayataka Fujimoto; Tohru Okanishi; Sotaro Kanai; Keishiro Sato; Mitsuyo Nishimura; Hideo Enoki
Journal:  Neurol Med Chir (Tokyo)       Date:  2017-08-01       Impact factor: 1.742

9.  Sample size calculations based on a difference in medians for positively skewed outcomes in health care studies.

Authors:  Aidan G O'Keeffe; Gareth Ambler; Julie A Barber
Journal:  BMC Med Res Methodol       Date:  2017-12-02       Impact factor: 4.615

10.  Robotic guidance platform for laser interstitial thermal ablation and stereotactic needle biopsies: a single center experience.

Authors:  Franco Rubino; Daniel G Eichberg; Joacir G Cordeiro; Long Di; Karen Eliahu; Ashish H Shah; Evan M Luther; Victor M Lu; Ricardo J Komotar; Michael E Ivan
Journal:  J Robot Surg       Date:  2021-07-13
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