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Patient-specific anatomical model for deep brain stimulation based on 7 Tesla MRI

OBJECTIVE: Deep brain stimulation (DBS) requires accurate localization of the anatomical target structure, and the precise placement of the DBS electrode within it. Ultra-high field 7 Tesla (T) MR images can be utilized to create patient-specific anatomical 3D models of the subthalamic nuclei (STN)...

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Autores principales: Duchin, Yuval, Shamir, Reuben R., Patriat, Remi, Kim, Jinyoung, Vitek, Jerrold L., Sapiro, Guillermo, Harel, Noam
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6104927/
https://www.ncbi.nlm.nih.gov/pubmed/30133472
http://dx.doi.org/10.1371/journal.pone.0201469
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author Duchin, Yuval
Shamir, Reuben R.
Patriat, Remi
Kim, Jinyoung
Vitek, Jerrold L.
Sapiro, Guillermo
Harel, Noam
author_facet Duchin, Yuval
Shamir, Reuben R.
Patriat, Remi
Kim, Jinyoung
Vitek, Jerrold L.
Sapiro, Guillermo
Harel, Noam
author_sort Duchin, Yuval
collection PubMed
description OBJECTIVE: Deep brain stimulation (DBS) requires accurate localization of the anatomical target structure, and the precise placement of the DBS electrode within it. Ultra-high field 7 Tesla (T) MR images can be utilized to create patient-specific anatomical 3D models of the subthalamic nuclei (STN) to enhance pre-surgical DBS targeting as well as post-surgical visualization of the DBS lead position and orientation. We validated the accuracy of the 7T imaging-based patient-specific model of the STN and measured the variability of the location and dimensions across movement disorder patients. METHODS: 72 patients who underwent DBS surgery were scanned preoperatively on 7T MRI. Segmentations and 3D volume rendering of the STN were generated for all patients. For 21 STN-DBS cases, microelectrode recording (MER) was used to validate the segmentation. For 12 cases, we computed the correlation between the overlap of the STN and volume of tissue activated (VTA) and the monopolar review for a further validation of the model’s accuracy and its clinical relevancy. RESULTS: We successfully reconstructed and visualized the STN in all patients. Significant variability was found across individuals regarding the location of the STN center of mass as well as its volume, length, depth and width. Significant correlations were found between MER and the 7T imaging-based model of the STN (r = 0.86) and VTA-STN overlap and the monopolar review outcome (r = 0.61). CONCLUSION: The results suggest that an accurate visualization and localization of a patient-specific 3D model of the STN can be generated based on 7T MRI. The imaging-based 7T MRI STN model was validated using MER and patient’s clinical outcomes. The significant variability observed in the STN location and shape based on a large number of patients emphasizes the importance of an accurate direct visualization of the STN for DBS targeting. An accurate STN localization can facilitate postoperative stimulation parameters for optimized patient outcome.
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spelling pubmed-61049272018-09-15 Patient-specific anatomical model for deep brain stimulation based on 7 Tesla MRI Duchin, Yuval Shamir, Reuben R. Patriat, Remi Kim, Jinyoung Vitek, Jerrold L. Sapiro, Guillermo Harel, Noam PLoS One Research Article OBJECTIVE: Deep brain stimulation (DBS) requires accurate localization of the anatomical target structure, and the precise placement of the DBS electrode within it. Ultra-high field 7 Tesla (T) MR images can be utilized to create patient-specific anatomical 3D models of the subthalamic nuclei (STN) to enhance pre-surgical DBS targeting as well as post-surgical visualization of the DBS lead position and orientation. We validated the accuracy of the 7T imaging-based patient-specific model of the STN and measured the variability of the location and dimensions across movement disorder patients. METHODS: 72 patients who underwent DBS surgery were scanned preoperatively on 7T MRI. Segmentations and 3D volume rendering of the STN were generated for all patients. For 21 STN-DBS cases, microelectrode recording (MER) was used to validate the segmentation. For 12 cases, we computed the correlation between the overlap of the STN and volume of tissue activated (VTA) and the monopolar review for a further validation of the model’s accuracy and its clinical relevancy. RESULTS: We successfully reconstructed and visualized the STN in all patients. Significant variability was found across individuals regarding the location of the STN center of mass as well as its volume, length, depth and width. Significant correlations were found between MER and the 7T imaging-based model of the STN (r = 0.86) and VTA-STN overlap and the monopolar review outcome (r = 0.61). CONCLUSION: The results suggest that an accurate visualization and localization of a patient-specific 3D model of the STN can be generated based on 7T MRI. The imaging-based 7T MRI STN model was validated using MER and patient’s clinical outcomes. The significant variability observed in the STN location and shape based on a large number of patients emphasizes the importance of an accurate direct visualization of the STN for DBS targeting. An accurate STN localization can facilitate postoperative stimulation parameters for optimized patient outcome. Public Library of Science 2018-08-22 /pmc/articles/PMC6104927/ /pubmed/30133472 http://dx.doi.org/10.1371/journal.pone.0201469 Text en © 2018 Duchin et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Duchin, Yuval
Shamir, Reuben R.
Patriat, Remi
Kim, Jinyoung
Vitek, Jerrold L.
Sapiro, Guillermo
Harel, Noam
Patient-specific anatomical model for deep brain stimulation based on 7 Tesla MRI
title Patient-specific anatomical model for deep brain stimulation based on 7 Tesla MRI
title_full Patient-specific anatomical model for deep brain stimulation based on 7 Tesla MRI
title_fullStr Patient-specific anatomical model for deep brain stimulation based on 7 Tesla MRI
title_full_unstemmed Patient-specific anatomical model for deep brain stimulation based on 7 Tesla MRI
title_short Patient-specific anatomical model for deep brain stimulation based on 7 Tesla MRI
title_sort patient-specific anatomical model for deep brain stimulation based on 7 tesla mri
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6104927/
https://www.ncbi.nlm.nih.gov/pubmed/30133472
http://dx.doi.org/10.1371/journal.pone.0201469
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