DocumentCode
3169258
Title
Basal Ganglia Modeling in Healthy and Parkinson´s Disease State. II. Network-based Multi-Units Simulation
Author
Santaniello, Sabato ; Fiengo, Giovanni ; Glielmo, Luigi
Author_Institution
Univ. degli Studi del Sannio, Benevento
fYear
2007
fDate
9-13 July 2007
Firstpage
4095
Lastpage
4100
Abstract
Parkinson´s disease (PD) is treated by means of deep brain stimulation (DBS), a therapy based on the injection of current on a regular basis into the basal ganglia, a set of small subcortical nervous system nuclei. DBS is effective in relief of motor symptoms and leads to a notable reduction of drug dose. From an engineering viewpoint, it also raises several optimization-related issues, like energy consumption minimization and stimulation effectiveness. How DBS really works, however, is still unknown, even though several hypotheses and experiments have been reported in literature. To shed some light on the function of DBS, we focused in [1] on those brain nuclei involved in the genesis of PD motor symptoms and developed for them conductance-based models to mimic quantitative data from different in vitro experiments. Now, we use such models in a network scheme to reproduce the main existing anatomical connections between and within the basal ganglia and the resulting macroscopic behaviors reported in literature both for normal and Parkinsonian state. The overall model is proposed as a simulatioParkinson´s disease (PD) is treated by means of deep brain stimulation (DBS), a therapy based on the injection of current on a regular basis into the basal ganglia, a set of small subcortical nervous system nuclei. DBS is effective in relief of motor symptoms and leads to a notable reduction of drug dose. From an engineering viewpoint, it also raises several optimization-related issues, like energy consumption minimization and stimulation effectiveness. How DBS really works, however, is still unknown, even though several hypotheses and experiments have been reported in literature. To shed some light on the function of DBS, we focused in (S. Santaniello et al., 20007) on those brain nuclei involved in the genesis of PD motor symptoms and developed for them conductance-based models to mimic quantitative data from different in vitro experiments. Now, we use such models in a netw- ork scheme to reproduce the main existing anatomical connections between and within the basal ganglia and the resulting macroscopic behaviors reported in literature both for normal and Parkinsonian state. The overall model is proposed as a simulation instrument to better understand the functional mechanisms currently explaining the basal ganglia physiology and the cellular effects of DBS.n instrument to better understand the functional mechanisms currently explaining the basal ganglia physiology and the cellular effects of DBS.
Keywords
brain; diseases; drugs; minimisation; physiology; surgery; Parkinson´s disease motor symptoms; basal ganglia physiology; brain nuclei; conductance-based models; deep brain stimulation; drug dose; energy consumption minimization; health; macroscopic behaviors; network-based multiunits simulation; optimization-related issues; stimulation effectiveness; subcortical nervous system nuclei; therapy; Basal ganglia; Brain modeling; Brain stimulation; Drugs; Energy consumption; Medical treatment; Nervous system; Parkinson´s disease; Power engineering and energy; Satellite broadcasting; Basal Ganglia; Deep Brain Stimulation; Network-based Modeling; Nonlinear Systems; Parkinson´s Disease;
fLanguage
English
Publisher
ieee
Conference_Titel
American Control Conference, 2007. ACC '07
Conference_Location
New York, NY
ISSN
0743-1619
Print_ISBN
1-4244-0988-8
Electronic_ISBN
0743-1619
Type
conf
DOI
10.1109/ACC.2007.4282742
Filename
4282742
Link To Document