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Stereo-crossed ablation guided by stereoelectroencephalography for epilepsy: comprehensive coagulations via a network of multi-electrodes

BACKGROUND: Introducing multiple different stereoelectroencephalography electrodes in a three-dimensional (3D) network to create a 3D-lesioning field or stereo-crossed radiofrequency thermocoagulation (scRF-TC) might create larger lesioning size; however, this has not been quantified to date. This s...

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Autores principales: Wei, Peng-Hu, Fan, Xiao-Tong, Wang, Yi-He, Lu, Chao, Ou, Si-Qi, Meng, Fei, Li, Mu-Yang, Zhang, Hua-Qiang, Chen, Si-Chang, An, Yang, Yang, Yan-Feng, Ren, Lian-Kun, Shan, Yong-Zhi, Zhao, Guo-Guang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: SAGE Publications 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7285934/
https://www.ncbi.nlm.nih.gov/pubmed/32565913
http://dx.doi.org/10.1177/1756286420928657
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author Wei, Peng-Hu
Fan, Xiao-Tong
Wang, Yi-He
Lu, Chao
Ou, Si-Qi
Meng, Fei
Li, Mu-Yang
Zhang, Hua-Qiang
Chen, Si-Chang
An, Yang
Yang, Yan-Feng
Ren, Lian-Kun
Shan, Yong-Zhi
Zhao, Guo-Guang
author_facet Wei, Peng-Hu
Fan, Xiao-Tong
Wang, Yi-He
Lu, Chao
Ou, Si-Qi
Meng, Fei
Li, Mu-Yang
Zhang, Hua-Qiang
Chen, Si-Chang
An, Yang
Yang, Yan-Feng
Ren, Lian-Kun
Shan, Yong-Zhi
Zhao, Guo-Guang
author_sort Wei, Peng-Hu
collection PubMed
description BACKGROUND: Introducing multiple different stereoelectroencephalography electrodes in a three-dimensional (3D) network to create a 3D-lesioning field or stereo-crossed radiofrequency thermocoagulation (scRF-TC) might create larger lesioning size; however, this has not been quantified to date. This study aimed to quantify the configurations essential for scRF-TC. METHODS: By using polyacrylamide gel (PAG), we investigated the effect of electrode conformation (angled/parallel/multiple edges) and electrode distance of creating an electrode network. Volume, time, and temperature were analyzed quantitatively with magnetic resonance imaging, video analysis, and machine learning. A network of electrodes to the pathological left area 47 was created in a patient; the seizure outcome and coverage range were further observed. RESULTS: After the compatibility test between the PAG and brain tissue, the sufficient distance of contacts (from different electrodes) for confluent lesioning was 7 mm with the PAG. Connection to the lesioning field could be achieved even with a different arrangement of electrodes. One contact could achieve at least six connections with different peripheral contacts. Coagulation with a network of electrodes can create more significant lesioning sizes, 1.81–2.12 times those of the classic approaches. The confluent lesioning field created by scRF-TC had a volume of 38.7 cm(3); the low metabolic area was adequately covered. The representative patient was free of seizures throughout the 12-month follow up. CONCLUSION: Lesioning with electrodes in a network manner is practical for adequate 3D coverage. A secondary craniotomy could be potentially prevented by combining both monitoring and a large volume of lesions.
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spelling pubmed-72859342020-06-19 Stereo-crossed ablation guided by stereoelectroencephalography for epilepsy: comprehensive coagulations via a network of multi-electrodes Wei, Peng-Hu Fan, Xiao-Tong Wang, Yi-He Lu, Chao Ou, Si-Qi Meng, Fei Li, Mu-Yang Zhang, Hua-Qiang Chen, Si-Chang An, Yang Yang, Yan-Feng Ren, Lian-Kun Shan, Yong-Zhi Zhao, Guo-Guang Ther Adv Neurol Disord Therapeutic Perspectives in Neurology BACKGROUND: Introducing multiple different stereoelectroencephalography electrodes in a three-dimensional (3D) network to create a 3D-lesioning field or stereo-crossed radiofrequency thermocoagulation (scRF-TC) might create larger lesioning size; however, this has not been quantified to date. This study aimed to quantify the configurations essential for scRF-TC. METHODS: By using polyacrylamide gel (PAG), we investigated the effect of electrode conformation (angled/parallel/multiple edges) and electrode distance of creating an electrode network. Volume, time, and temperature were analyzed quantitatively with magnetic resonance imaging, video analysis, and machine learning. A network of electrodes to the pathological left area 47 was created in a patient; the seizure outcome and coverage range were further observed. RESULTS: After the compatibility test between the PAG and brain tissue, the sufficient distance of contacts (from different electrodes) for confluent lesioning was 7 mm with the PAG. Connection to the lesioning field could be achieved even with a different arrangement of electrodes. One contact could achieve at least six connections with different peripheral contacts. Coagulation with a network of electrodes can create more significant lesioning sizes, 1.81–2.12 times those of the classic approaches. The confluent lesioning field created by scRF-TC had a volume of 38.7 cm(3); the low metabolic area was adequately covered. The representative patient was free of seizures throughout the 12-month follow up. CONCLUSION: Lesioning with electrodes in a network manner is practical for adequate 3D coverage. A secondary craniotomy could be potentially prevented by combining both monitoring and a large volume of lesions. SAGE Publications 2020-06-09 /pmc/articles/PMC7285934/ /pubmed/32565913 http://dx.doi.org/10.1177/1756286420928657 Text en © The Author(s), 2020 https://creativecommons.org/licenses/by-nc/4.0/ This article is distributed under the terms of the Creative Commons Attribution-NonCommercial 4.0 License (https://creativecommons.org/licenses/by-nc/4.0/) which permits non-commercial use, reproduction and distribution of the work without further permission provided the original work is attributed as specified on the SAGE and Open Access page (https://us.sagepub.com/en-us/nam/open-access-at-sage).
spellingShingle Therapeutic Perspectives in Neurology
Wei, Peng-Hu
Fan, Xiao-Tong
Wang, Yi-He
Lu, Chao
Ou, Si-Qi
Meng, Fei
Li, Mu-Yang
Zhang, Hua-Qiang
Chen, Si-Chang
An, Yang
Yang, Yan-Feng
Ren, Lian-Kun
Shan, Yong-Zhi
Zhao, Guo-Guang
Stereo-crossed ablation guided by stereoelectroencephalography for epilepsy: comprehensive coagulations via a network of multi-electrodes
title Stereo-crossed ablation guided by stereoelectroencephalography for epilepsy: comprehensive coagulations via a network of multi-electrodes
title_full Stereo-crossed ablation guided by stereoelectroencephalography for epilepsy: comprehensive coagulations via a network of multi-electrodes
title_fullStr Stereo-crossed ablation guided by stereoelectroencephalography for epilepsy: comprehensive coagulations via a network of multi-electrodes
title_full_unstemmed Stereo-crossed ablation guided by stereoelectroencephalography for epilepsy: comprehensive coagulations via a network of multi-electrodes
title_short Stereo-crossed ablation guided by stereoelectroencephalography for epilepsy: comprehensive coagulations via a network of multi-electrodes
title_sort stereo-crossed ablation guided by stereoelectroencephalography for epilepsy: comprehensive coagulations via a network of multi-electrodes
topic Therapeutic Perspectives in Neurology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7285934/
https://www.ncbi.nlm.nih.gov/pubmed/32565913
http://dx.doi.org/10.1177/1756286420928657
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