Toward Epileptic Brain Region Detection Based on Magnetic Nanoparticle Patterning
Resection of the epilepsy foci is the best treatment for more than 15% of epileptic patients or 50% of patients who are refractory to all forms of medical treatment. Accurate mapping of the locations of epileptic neuronal networks can result in the complete resection of epileptic foci. Even though c...
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doaj-59c17326de294ec793e7ed870685f8a92020-11-24T21:47:28ZengMDPI AGSensors1424-82202015-09-01159244092442710.3390/s150924409s150924409Toward Epileptic Brain Region Detection Based on Magnetic Nanoparticle PatterningMaysam Z. Pedram0Amir Shamloo1Aria Alasty2Ebrahim Ghafar-Zadeh3Departement of Mechanical Engineering, Sharif University of Technology, Tehran, IranDepartement of Mechanical Engineering, Sharif University of Technology, Tehran, IranDepartement of Mechanical Engineering, Sharif University of Technology, Tehran, IranDepartement of Electrical Engineering and Computer Science, York University, Toronto, ON M3J1P3, CanadaResection of the epilepsy foci is the best treatment for more than 15% of epileptic patients or 50% of patients who are refractory to all forms of medical treatment. Accurate mapping of the locations of epileptic neuronal networks can result in the complete resection of epileptic foci. Even though currently electroencephalography is the best technique for mapping the epileptic focus, it cannot define the boundary of epilepsy that accurately. Herein we put forward a new accurate brain mapping technique using superparamagnetic nanoparticles (SPMNs). The main hypothesis in this new approach is the creation of super-paramagnetic aggregates in the epileptic foci due to high electrical and magnetic activities. These aggregates may improve tissue contrast of magnetic resonance imaging (MRI) that results in improving the resection of epileptic foci. In this paper, we present the mathematical models before discussing the simulation results. Furthermore, we mimic the aggregation of SPMNs in a weak magnetic field using a low-cost microfabricated device. Based on these results, the SPMNs may play a crucial role in diagnostic epilepsy and the subsequent treatment of this disease.http://www.mdpi.com/1424-8220/15/9/24409epilepsybrain magnetic fieldmagnetic nanoparticle |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Maysam Z. Pedram Amir Shamloo Aria Alasty Ebrahim Ghafar-Zadeh |
spellingShingle |
Maysam Z. Pedram Amir Shamloo Aria Alasty Ebrahim Ghafar-Zadeh Toward Epileptic Brain Region Detection Based on Magnetic Nanoparticle Patterning Sensors epilepsy brain magnetic field magnetic nanoparticle |
author_facet |
Maysam Z. Pedram Amir Shamloo Aria Alasty Ebrahim Ghafar-Zadeh |
author_sort |
Maysam Z. Pedram |
title |
Toward Epileptic Brain Region Detection Based on Magnetic Nanoparticle Patterning |
title_short |
Toward Epileptic Brain Region Detection Based on Magnetic Nanoparticle Patterning |
title_full |
Toward Epileptic Brain Region Detection Based on Magnetic Nanoparticle Patterning |
title_fullStr |
Toward Epileptic Brain Region Detection Based on Magnetic Nanoparticle Patterning |
title_full_unstemmed |
Toward Epileptic Brain Region Detection Based on Magnetic Nanoparticle Patterning |
title_sort |
toward epileptic brain region detection based on magnetic nanoparticle patterning |
publisher |
MDPI AG |
series |
Sensors |
issn |
1424-8220 |
publishDate |
2015-09-01 |
description |
Resection of the epilepsy foci is the best treatment for more than 15% of epileptic patients or 50% of patients who are refractory to all forms of medical treatment. Accurate mapping of the locations of epileptic neuronal networks can result in the complete resection of epileptic foci. Even though currently electroencephalography is the best technique for mapping the epileptic focus, it cannot define the boundary of epilepsy that accurately. Herein we put forward a new accurate brain mapping technique using superparamagnetic nanoparticles (SPMNs). The main hypothesis in this new approach is the creation of super-paramagnetic aggregates in the epileptic foci due to high electrical and magnetic activities. These aggregates may improve tissue contrast of magnetic resonance imaging (MRI) that results in improving the resection of epileptic foci. In this paper, we present the mathematical models before discussing the simulation results. Furthermore, we mimic the aggregation of SPMNs in a weak magnetic field using a low-cost microfabricated device. Based on these results, the SPMNs may play a crucial role in diagnostic epilepsy and the subsequent treatment of this disease. |
topic |
epilepsy brain magnetic field magnetic nanoparticle |
url |
http://www.mdpi.com/1424-8220/15/9/24409 |
work_keys_str_mv |
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