DocumentCode :
1407987
Title :
An Electric Field Model for Prediction of Somatosensory (S1) Cortical Field Potentials Induced by Ventral Posterior Lateral (VPL) Thalamic Microstimulation
Author :
Choi, John Stephen ; DiStasio, Marcello Michael ; Brockmeier, Austin J. ; Francis, Joseph Thachil
Author_Institution :
Dept. of Physiol. & Pharmacology, SUNY, Brooklyn, OH, USA
Volume :
20
Issue :
2
fYear :
2012
fDate :
3/1/2012 12:00:00 AM
Firstpage :
161
Lastpage :
169
Abstract :
Microstimulation (MiSt) is used experimentally and clinically to activate localized populations of neural elements. However, it is difficult to predict-and subsequently control-neural responses to simultaneous current injection through multiple electrodes in an array. This is due to the unknown locations of neuronal elements in the extracellular medium that are excited by the superposition of multiple parallel current sources. We, therefore, propose a model that maps the computed electric field in the 3-D space surrounding the stimulating electrodes in one brain region to the local field potential (LFP) fluctuations evoked in a downstream region. Our model is trained with the recorded LFP waveforms in the primary somatosensory cortex (S1) resulting from MiSt applied in multiple electrode configurations in the ventral posterolateral nucleus (VPL) of the quiet awake rat. We then predict the cortical responses to MiSt in “novel” electrode configurations, a result that suggests that this technique could aid in the design of spatially optimized MiSt patterns through a multielectrode array.
Keywords :
bioelectric potentials; biomedical electrodes; brain models; cellular biophysics; neurophysiology; somatosensory phenomena; brain; current injection; electric field model; extracellular medium; local field potential fluctuations; multielectrode array; multiple parallel current sources; neural elements; primary somatosensory cortex; quiet awake rat; somatosensory cortical field potentials; ventral posterior lateral thalamic microstimulation; ventral posterolateral nucleus; Animals; Arrays; Brain modeling; Computational modeling; Current density; Electrodes; Mathematical model; Afferent Pathways; Animals; Artifacts; Electric Stimulation; Electrodes; Electromagnetic Fields; Evoked Potentials, Somatosensory; Female; Models, Neurological; Neural Prostheses; Nonlinear Dynamics; Predictive Value of Tests; Prosthesis Design; Rats; Rats, Long-Evans; Ventral Thalamic Nuclei;
fLanguage :
English
Journal_Title :
Neural Systems and Rehabilitation Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
1534-4320
Type :
jour
DOI :
10.1109/TNSRE.2011.2181417
Filename :
6112236
Link To Document :
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