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Simple, biologically-constrained CA1 pyramidal cell models using an intact, whole hippocampus context
- Source :
- F1000Research
- Publication Year :
- 2014
- Publisher :
- F1000Research, 2014.
-
Abstract
- The hippocampus is a heavily studied brain structure due to its involvement in learning and memory. Detailed models of excitatory, pyramidal cells in hippocampus have been developed using a range of experimental data. These models have been used to help us understand, for example, the effects of synaptic integration and voltage gated channel densities and distributions on cellular responses. However, these cellular outputs need to be considered from the perspective of the networks in which they are embedded. Using modeling approaches, if cellular representations are too detailed, it quickly becomes computationally unwieldy to explore large network simulations. Thus, simple models are preferable, but at the same time they need to have a clear, experimental basis so as to allow physiologically based understandings to emerge. In this article, we describe the development of simple models of CA1 pyramidal cells, as derived in a well-defined experimental context of an intact, whole hippocampus preparation expressing population oscillations. These models are based on the intrinsic properties and frequency-current profiles of CA1 pyramidal cells, and can be used to build, fully examine, and analyze large networks.
- Subjects :
- education.field_of_study
Basis (linear algebra)
General Immunology and Microbiology
Ca1 pyramidal neuron
Population
Hippocampus
Context (language use)
General Medicine
Articles
Biology
General Biochemistry, Genetics and Molecular Biology
Sensory Systems
Range (mathematics)
Simple (abstract algebra)
Excitatory postsynaptic potential
General Pharmacology, Toxicology and Pharmaceutics
education
Neuronal Signaling Mechanisms
Neuroscience
Research Article
Subjects
Details
- Language :
- English
- ISSN :
- 20461402
- Volume :
- 3
- Database :
- OpenAIRE
- Journal :
- F1000Research
- Accession number :
- edsair.doi.dedup.....ac6b39c311171798a59b32ffdefa24ae