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  5. Uncertainty Quantification of Oscillation Suppression during DBS in a Coupled Finite Element and Network Model
 
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Uncertainty Quantification of Oscillation Suppression during DBS in a Coupled Finite Element and Network Model

Author(s)
Schmidt, Christian  
Dunn, Eleanor  
Lowery, Madeleine M.  
Rienen, Urusula Van  
Uri
http://hdl.handle.net/10197/26078
Date Issued
2018-02
Date Available
2024-05-28T14:00:31Z
Abstract
Models of the cortico-basal ganglia network and volume conductor models of the brain can provide insight into the mechanisms of action of deep brain stimulation (DBS). In this study, the coupling of a network model, under parkinsonian conditions, to the extracellular field distribution obtained from a three dimensional finite element model of a rodent's brain during DBS is presented. This coupled model is used to investigate the influence of uncertainty in the electrical properties of brain tissue and encapsulation tissue, formed around the electrode after implantation, on the suppression of oscillatory neural activity during DBS. The resulting uncertainty in this effect of DBS on the network activity is quantified using a computationally efficient and non-intrusive stochastic approach based on the generalized Polynomial Chaos. The results suggest that variations in the electrical properties of brain tissue may have a substantial influence on the level of suppression of oscillatory activity during DBS. Applying a global sensitivity analysis on the suppression of the simulated oscillatory activity showed that the influence of uncertainty in the electrical properties of the encapsulation tissue had only a minor influence, in agreement with previous experimental and computational studies investigating the mechanisms of current-controlled DBS in the literature.
Sponsorship
European Research Council
Other Sponsorship
German Science Foundation
Type of Material
Journal Article
Publisher
IEEE
Journal
IEEE Transactions on Neural Systems and Rehabilitation Engineering
Volume
26
Issue
2
Start Page
281
End Page
290
Copyright (Published Version)
2016 IEEE
Subjects

Subthalamic nucleus

Basal ganglia

Cerebral vortex

Mice

Parkinson disease

Deep brain stimulatio...

Stochastic processes

Electrodes, Implanted...

Finite element analys...

Nonlinear dynamics

Neurological models

Computer simulation

DOI
10.1109/TNSRE.2016.2608925
Language
English
Status of Item
Peer reviewed
ISSN
1534-4320
This item is made available under a Creative Commons License
https://creativecommons.org/licenses/by-nc-nd/3.0/ie/
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Schmidt et al IEEE TNSRE 2016.pdf

Size

2.21 MB

Format

Adobe PDF

Checksum (MD5)

515c4b6d158059cf93c5ef1ac8097ad6

Owning collection
Electrical and Electronic Engineering Research Collection

Item descriptive metadata is released under a CC-0 (public domain) license: https://creativecommons.org/public-domain/cc0/.
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