Literature DB >> 33738542

Robot-assisted stereoelectroencephalography electrode placement in twenty-three pediatric patients: a high-resolution analysis of individual lead placement time and accuracy at a single institution.

David J Bonda1, Rachel Pruitt1, Liana Theroux2, Todd Goldstein3, Dimitre G Stefanov4, Sanjeev Kothare2, Shefali Karkare2, Shaun Rodgers5.   

Abstract

PURPOSE: We describe a detailed evaluation of predictors associated with individual lead placement efficiency and accuracy for 261 stereoelectroencephalography (sEEG) electrodes placed for epilepsy monitoring in twenty-three children at our institution.
METHODS: Intra- and post-operative data was used to generate a linear mixed model to investigate predictors associated with three outcomes (lead placement time, lead entry error, lead target error) while accounting for correlated observations from the same patients. Lead placement time was measured using electronic time-stamp records stored by the ROSA software for each individual electrode; entry and target site accuracy was measured using postoperative stereotactic CT images fused with preoperative electrode trajectory planning images on the ROSA computer software. Predictors were selected from a list of variables that included patient demographics, laterality of leads, anatomic location of lead, skull thickness, bolt cap device used, and lead sequence number.
RESULTS: Twenty-three patients (11 female, 48%) of mean age 11.7 (± 6.1) years underwent placement of intracranial sEEG electrodes (median 11 electrodes) at our institution over a period of 1 year. There were no associated infections, hemorrhages, or other adverse events, and successful seizure capture was obtained in all monitored patients. The mean placement time for individual electrodes across all patients was 6.56 (± 3.5) min; mean target accuracy was 4.5 (± 3.5) mm. Lesional electrodes were associated with 25.7% (95% CI: 6.7-40.9%, p = 0.02) smaller target point errors. Larger skull thickness was associated with larger error: for every 1-mm increase in skull thickness, there was a 4.3% (95% CI: 1.2-7.5%, p = 0.007) increase in target error. Bilateral lead placement was associated with 26.0% (95% CI: 9.9-44.5%, p = 0.002) longer lead placement time. The relationship between placement time and lead sequence number was nonlinear: it decreased consistently for the first 4 electrodes, and became less pronounced thereafter.
CONCLUSIONS: Variation in sEEG electrode placement efficiency and accuracy can be explained by phenomena both within and outside of operator control. It is important to keep in mind the factors that can lead to better or worse lead placement efficiency and/or accuracy in order to maximize patient safety while maintaining the standard of care.

Entities:  

Keywords:  electrode placement; epilepsy; stereoelectroencephalography

Year:  2021        PMID: 33738542     DOI: 10.1007/s00381-021-05107-w

Source DB:  PubMed          Journal:  Childs Nerv Syst        ISSN: 0256-7040            Impact factor:   1.475


  12 in total

1.  Applications of a robotic stereotactic arm for pediatric epilepsy and neurooncology surgery.

Authors:  Brandon A Miller; Afshin Salehi; David D Limbrick; Matthew D Smyth
Journal:  J Neurosurg Pediatr       Date:  2017-08-04       Impact factor: 2.375

2.  Frameless robotic stereotactic biopsies: a consecutive series of 100 cases.

Authors:  Michel Lefranc; Cyrille Capel; Anne-Sophie Pruvot-Occean; Anthony Fichten; Christine Desenclos; Patrick Toussaint; Daniel Le Gars; Johann Peltier
Journal:  J Neurosurg       Date:  2014-11-07       Impact factor: 5.115

3.  Indications, technique, and safety profile of insular stereoelectroencephalography electrode implantation in medically intractable epilepsy.

Authors:  Soha Alomar; Jeffrey P Mullin; Saksith Smithason; Jorge Gonzalez-Martinez
Journal:  J Neurosurg       Date:  2017-06-16       Impact factor: 5.115

4.  Postoperative outcomes following pediatric intracranial electrode monitoring: A case for stereoelectroencephalography (SEEG).

Authors:  Lily H Kim; Jonathon J Parker; Allen L Ho; Arjun V Pendharkar; Eric S Sussman; Casey H Halpern; Brenda Porter; Gerald A Grant
Journal:  Epilepsy Behav       Date:  2020-02-03       Impact factor: 2.937

Review 5.  Invasive epilepsy surgery evaluation.

Authors:  Stjepana Kovac; Vejay N Vakharia; Catherine Scott; Beate Diehl
Journal:  Seizure       Date:  2016-10-21       Impact factor: 3.184

Review 6.  Promises and limitations of human intracranial electroencephalography.

Authors:  Josef Parvizi; Sabine Kastner
Journal:  Nat Neurosci       Date:  2018-03-05       Impact factor: 24.884

7.  Stereoelectroencephalography in the "difficult to localize" refractory focal epilepsy: early experience from a North American epilepsy center.

Authors:  Jorge Gonzalez-Martinez; Juan Bulacio; Andreas Alexopoulos; Lara Jehi; William Bingaman; Imad Najm
Journal:  Epilepsia       Date:  2012-09-27       Impact factor: 5.864

8.  Robot-assisted procedures in pediatric neurosurgery.

Authors:  Alessandro De Benedictis; Andrea Trezza; Andrea Carai; Elisabetta Genovese; Emidio Procaccini; Raffaella Messina; Franco Randi; Silvia Cossu; Giacomo Esposito; Paolo Palma; Paolina Amante; Michele Rizzi; Carlo Efisio Marras
Journal:  Neurosurg Focus       Date:  2017-05       Impact factor: 4.047

Review 9.  Indications and limits of stereoelectroencephalography (SEEG).

Authors:  Lorella Minotti; Alexandra Montavont; Julia Scholly; Louise Tyvaert; Delphine Taussig
Journal:  Neurophysiol Clin       Date:  2018-01-17       Impact factor: 3.734

10.  Robot-Assisted Stereotactic Biopsy of Diffuse Intrinsic Pontine Glioma: A Single-Center Experience.

Authors:  Andrea Carai; Angela Mastronuzzi; Alessandro De Benedictis; Raffaella Messina; Antonella Cacchione; Evelina Miele; Franco Randi; Giacomo Esposito; Andrea Trezza; Giovanna Stefania Colafati; Alessandra Savioli; Franco Locatelli; Carlo Efisio Marras
Journal:  World Neurosurg       Date:  2017-02-27       Impact factor: 2.104

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  2 in total

1.  Stereoelectroencephalography in the very young: Case report.

Authors:  Joshua Katz; Caren Armstrong; Svetlana Kvint; Benjamin C Kennedy
Journal:  Epilepsy Behav Rep       Date:  2022-05-18

2.  FreeSurfer and 3D Slicer-Assisted SEEG Implantation for Drug-Resistant Epilepsy.

Authors:  Qiangqiang Liu; Junjie Wang; Changquan Wang; Fang Wei; Chencheng Zhang; Hongjiang Wei; Xiaolai Ye; Jiwen Xu
Journal:  Front Neurorobot       Date:  2022-02-28       Impact factor: 2.650

  2 in total

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