DocumentCode
1532576
Title
Integrated Multiscale Modeling of the Nervous System: Predicting Changes in Hippocampal Network Activity by a Positive AMPA Receptor Modulator
Author
Bouteiller, Jean-Marie C. ; Allam, Sushmita L. ; Hu, Eric Y. ; Greget, R. ; Ambert, N. ; Keller, A.F. ; Bischoff, Stefan ; Baudry, M. ; Berger, Theodore W.
Author_Institution
Dept. of Biomed. Eng., Univ. of Southern California, Los Angeles, CA, USA
Volume
58
Issue
10
fYear
2011
Firstpage
3008
Lastpage
3011
Abstract
One of the fundamental characteristics of the brain is its hierarchical organization. Scales in both space and time that must be considered when integrating across hierarchies of the nervous system are sufficiently great as to have impeded the development of routine multilevel modeling methodologies. Complex molecular interactions at the level of receptors and channels regulate activity at the level of neurons; interactions between multiple populations of neurons ultimately give rise to complex neural systems function and behavior. This spatial complexity takes place in the context of a composite temporal integration of multiple, different events unfolding at the millisecond, second, minute, hour, and longer time scales. In this study, we present a multiscale modeling methodology that integrates synaptic models into single neuron, and multineuron, network models. We have applied this approach to the specific problem of how changes at the level of kinetic parameters of a receptor-channel model are translated into changes in the temporal firing pattern of a single neuron, and ultimately, changes in the spatiotemporal activity of a network of neurons. These results demonstrate how this powerful methodology can be applied to understand the effects of a given local process within multiple hierarchical levels of the nervous system.
Keywords
brain; neurophysiology; physiological models; spatiotemporal phenomena; brain; hippocampal network activity; integrated multiscale modeling; multineuron; nervous system; neuron network model; positive AMPA receptor modulator; receptor-channel model; spatiotemporal activity; synaptic model; temporal firing pattern; Biological system modeling; Brain modeling; Complexity theory; Computational modeling; Modulation; Neurons; Ampakine; EONS; RHENOMS; bioinformatics; biological system modeling; glutamate receptor modulator; multi-scale; nervous system; neuronal firing; synapse model; synaptic integration; CA1 Region, Hippocampal; Computational Biology; Computer Simulation; Models, Neurological; Nerve Net; Receptors, AMPA;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/TBME.2011.2158605
Filename
5783506
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