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MRI-Based Multiscale Model for Electromagnetic Analysis in the Human Head with Implanted DBS

Deep brain stimulation (DBS) is an established procedure for the treatment of movement and affective disorders. Patients with DBS may benefit from magnetic resonance imaging (MRI) to evaluate injuries or comorbidities. However, the MRI radio-frequency (RF) energy may cause excessive tissue heating p...

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Autores principales: Iacono, Maria Ida, Makris, Nikos, Mainardi, Luca, Angelone, Leonardo M., Bonmassar, Giorgio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi Publishing Corporation 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3727211/
https://www.ncbi.nlm.nih.gov/pubmed/23956789
http://dx.doi.org/10.1155/2013/694171
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author Iacono, Maria Ida
Makris, Nikos
Mainardi, Luca
Angelone, Leonardo M.
Bonmassar, Giorgio
author_facet Iacono, Maria Ida
Makris, Nikos
Mainardi, Luca
Angelone, Leonardo M.
Bonmassar, Giorgio
author_sort Iacono, Maria Ida
collection PubMed
description Deep brain stimulation (DBS) is an established procedure for the treatment of movement and affective disorders. Patients with DBS may benefit from magnetic resonance imaging (MRI) to evaluate injuries or comorbidities. However, the MRI radio-frequency (RF) energy may cause excessive tissue heating particularly near the electrode. This paper studies how the accuracy of numerical modeling of the RF field inside a DBS patient varies with spatial resolution and corresponding anatomical detail of the volume surrounding the electrodes. A multiscale model (MS) was created by an atlas-based segmentation using a 1 mm(3) head model (mRes) refined in the basal ganglia by a 200 μm(2) ex-vivo dataset. Four DBS electrodes targeting the left globus pallidus internus were modeled. Electromagnetic simulations at 128 MHz showed that the peak of the electric field of the MS doubled (18.7 kV/m versus 9.33 kV/m) and shifted 6.4 mm compared to the mRes model. Additionally, the MS had a sixfold increase over the mRes model in peak-specific absorption rate (SAR of 43.9 kW/kg versus 7 kW/kg). The results suggest that submillimetric resolution and improved anatomical detail in the model may increase the accuracy of computed electric field and local SAR around the tip of the implant.
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spelling pubmed-37272112013-08-16 MRI-Based Multiscale Model for Electromagnetic Analysis in the Human Head with Implanted DBS Iacono, Maria Ida Makris, Nikos Mainardi, Luca Angelone, Leonardo M. Bonmassar, Giorgio Comput Math Methods Med Research Article Deep brain stimulation (DBS) is an established procedure for the treatment of movement and affective disorders. Patients with DBS may benefit from magnetic resonance imaging (MRI) to evaluate injuries or comorbidities. However, the MRI radio-frequency (RF) energy may cause excessive tissue heating particularly near the electrode. This paper studies how the accuracy of numerical modeling of the RF field inside a DBS patient varies with spatial resolution and corresponding anatomical detail of the volume surrounding the electrodes. A multiscale model (MS) was created by an atlas-based segmentation using a 1 mm(3) head model (mRes) refined in the basal ganglia by a 200 μm(2) ex-vivo dataset. Four DBS electrodes targeting the left globus pallidus internus were modeled. Electromagnetic simulations at 128 MHz showed that the peak of the electric field of the MS doubled (18.7 kV/m versus 9.33 kV/m) and shifted 6.4 mm compared to the mRes model. Additionally, the MS had a sixfold increase over the mRes model in peak-specific absorption rate (SAR of 43.9 kW/kg versus 7 kW/kg). The results suggest that submillimetric resolution and improved anatomical detail in the model may increase the accuracy of computed electric field and local SAR around the tip of the implant. Hindawi Publishing Corporation 2013 2013-07-15 /pmc/articles/PMC3727211/ /pubmed/23956789 http://dx.doi.org/10.1155/2013/694171 Text en Copyright © 2013 Maria Ida Iacono et al. https://creativecommons.org/licenses/by/3.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Iacono, Maria Ida
Makris, Nikos
Mainardi, Luca
Angelone, Leonardo M.
Bonmassar, Giorgio
MRI-Based Multiscale Model for Electromagnetic Analysis in the Human Head with Implanted DBS
title MRI-Based Multiscale Model for Electromagnetic Analysis in the Human Head with Implanted DBS
title_full MRI-Based Multiscale Model for Electromagnetic Analysis in the Human Head with Implanted DBS
title_fullStr MRI-Based Multiscale Model for Electromagnetic Analysis in the Human Head with Implanted DBS
title_full_unstemmed MRI-Based Multiscale Model for Electromagnetic Analysis in the Human Head with Implanted DBS
title_short MRI-Based Multiscale Model for Electromagnetic Analysis in the Human Head with Implanted DBS
title_sort mri-based multiscale model for electromagnetic analysis in the human head with implanted dbs
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3727211/
https://www.ncbi.nlm.nih.gov/pubmed/23956789
http://dx.doi.org/10.1155/2013/694171
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