DocumentCode :
1814008
Title :
Multiple coils in a conducting liquid for deep and whole-brain transcranial magnetic stimulation. I. Single-frequency excitation
Author :
Oliveira, Hélder ; Silva, Marília Dias ; Ferreira, Carina Vieira ; Fonte, Paulo ; Jesus, Luís ; Salvador, Ricardo ; Silvestre, João ; Crespo, Paulo
Author_Institution :
LIP - Lab. de Instrumentacao e Fis. Exp. de Particulas, Coimbra, Portugal
fYear :
2012
fDate :
23-25 Feb. 2012
Firstpage :
1
Lastpage :
4
Abstract :
We present a system comprising multiple coils excited at a single frequency and immersed in a conducting liquid allowing for unprecedented deep, whole-brain transcranial magnetic stimulation (TMS). Finite-element methods were applied onto a spherical head model complemented by an ellipsoidal torso. The head model comprises skin, skull, cerebral spinal fluid, and brain tissue. Results show deep-brain induced currents reaching 85% at 10-cm penetration (brain center) in respect to surface (cortex) maximum. For comparison, state-of-the-art published data reach 47% relative induction at 8-cm depth only. This system counterparts well-known limiting effects occurring due to the enhancement of current densities at the brain/surface interface by immersing the stimulating coils (and partially the head of the patient) into a conducting liquid such as an electrolyte solution or a liquid metal. In addition, several system asymmetries are exploited in order to optimize deep-brain stimulation down to the center of the brain. Although current densities induced in the retinas and in the torso are estimated to reach sub-optimum levels in regard to patient safety, these first positive results show that overcoming the brain/surface induction barrier is feasible.
Keywords :
bioelectric potentials; bone; brain models; coils; current density; electrolytes; finite element analysis; liquid metals; neurophysiology; skin; transcranial magnetic stimulation; brain center; brain-surface induction barrier; brain-surface interface; cerebral spinal fluid; conducting liquid; current density; deep transcranial magnetic stimulation; deep-brain induced currents; depth 10 cm; depth 8 cm; electrolyte solution; ellipsoidal; finite element methods; liquid metal; multiple coils; single-frequency excitation; skin; skull; spherical head model; state-of-the-art published data; surface cortex maximum; whole-brain transcranial magnetic stimulation; Brain modeling; Coils; Current density; Magnetic heads; Magnetic liquids; Magnetic stimulation; Torso; Neuroscience; Transcranial Magnetic Stimulation;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Bioengineering (ENBENG), 2012 IEEE 2nd Portuguese Meeting in
Conference_Location :
Coimbra
Print_ISBN :
978-1-4673-4524-8
Type :
conf
DOI :
10.1109/ENBENG.2012.6331374
Filename :
6331374
Link To Document :
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