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Energetics Based Spike Generation of a Single Neuron: Simulation Results and Analysis

Existing current based models that capture spike activity, though useful in studying information processing capabilities of neurons, fail to throw light on their internal functioning. It is imperative to develop a model that captures the spike train of a neuron as a function of its intracellular par...

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Autores principales: Venkateswaran, Nagarajan, Sekhar, Sudarshan, Thirupatchur Sanjayasarathy, Thiagarajan, Krishnan, Sharath Navalpakkam, Kabaleeswaran, Dinesh Kannan, Ramanathan, Subbu, Narayanasamy, Narendran, Jagathrakshakan, Sharan Srinivas, Vignesh, S. R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Research Foundation 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3269776/
https://www.ncbi.nlm.nih.gov/pubmed/22347180
http://dx.doi.org/10.3389/fnene.2012.00002
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author Venkateswaran, Nagarajan
Sekhar, Sudarshan
Thirupatchur Sanjayasarathy, Thiagarajan
Krishnan, Sharath Navalpakkam
Kabaleeswaran, Dinesh Kannan
Ramanathan, Subbu
Narayanasamy, Narendran
Jagathrakshakan, Sharan Srinivas
Vignesh, S. R.
author_facet Venkateswaran, Nagarajan
Sekhar, Sudarshan
Thirupatchur Sanjayasarathy, Thiagarajan
Krishnan, Sharath Navalpakkam
Kabaleeswaran, Dinesh Kannan
Ramanathan, Subbu
Narayanasamy, Narendran
Jagathrakshakan, Sharan Srinivas
Vignesh, S. R.
author_sort Venkateswaran, Nagarajan
collection PubMed
description Existing current based models that capture spike activity, though useful in studying information processing capabilities of neurons, fail to throw light on their internal functioning. It is imperative to develop a model that captures the spike train of a neuron as a function of its intracellular parameters for non-invasive diagnosis of diseased neurons. This is the first ever article to present such an integrated model that quantifies the inter-dependency between spike activity and intracellular energetics. The generated spike trains from our integrated model will throw greater light on the intracellular energetics than existing current models. Now, an abnormality in the spike of a diseased neuron can be linked and hence effectively analyzed at the energetics level. The spectral analysis of the generated spike trains in a time–frequency domain will help identify abnormalities in the internals of a neuron. As a case study, the parameters of our model are tuned for Alzheimer’s disease and its resultant spike trains are studied and presented. This massive initiative ultimately aims to encompass the entire molecular signaling pathways of the neuronal bioenergetics linking it to the voltage spike initiation and propagation; due to the lack of experimental data quantifying the inter dependencies among the parameters, the model at this stage adopts a particular level of functionality and is shown as an approach to study and perform disease modeling at the spike train and the mitochondrial bioenergetics level.
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spelling pubmed-32697762012-02-15 Energetics Based Spike Generation of a Single Neuron: Simulation Results and Analysis Venkateswaran, Nagarajan Sekhar, Sudarshan Thirupatchur Sanjayasarathy, Thiagarajan Krishnan, Sharath Navalpakkam Kabaleeswaran, Dinesh Kannan Ramanathan, Subbu Narayanasamy, Narendran Jagathrakshakan, Sharan Srinivas Vignesh, S. R. Front Neuroenergetics Neuroscience Existing current based models that capture spike activity, though useful in studying information processing capabilities of neurons, fail to throw light on their internal functioning. It is imperative to develop a model that captures the spike train of a neuron as a function of its intracellular parameters for non-invasive diagnosis of diseased neurons. This is the first ever article to present such an integrated model that quantifies the inter-dependency between spike activity and intracellular energetics. The generated spike trains from our integrated model will throw greater light on the intracellular energetics than existing current models. Now, an abnormality in the spike of a diseased neuron can be linked and hence effectively analyzed at the energetics level. The spectral analysis of the generated spike trains in a time–frequency domain will help identify abnormalities in the internals of a neuron. As a case study, the parameters of our model are tuned for Alzheimer’s disease and its resultant spike trains are studied and presented. This massive initiative ultimately aims to encompass the entire molecular signaling pathways of the neuronal bioenergetics linking it to the voltage spike initiation and propagation; due to the lack of experimental data quantifying the inter dependencies among the parameters, the model at this stage adopts a particular level of functionality and is shown as an approach to study and perform disease modeling at the spike train and the mitochondrial bioenergetics level. Frontiers Research Foundation 2012-02-01 /pmc/articles/PMC3269776/ /pubmed/22347180 http://dx.doi.org/10.3389/fnene.2012.00002 Text en Copyright © 2012 Venkateswaran, Sekhar, Thirupatchur Sanjayasarathy, Krishnan, Kabaleeswaran, Ramanathan, Narayanasamy, Jagathrakshakan and Vignesh. http://www.frontiersin.org/licenseagreement This is an open-access article distributed under the terms of the Creative Commons Attribution Non Commercial License, which permits non-commercial use, distribution, and reproduction in other forums, provided the original authors and source are credited.
spellingShingle Neuroscience
Venkateswaran, Nagarajan
Sekhar, Sudarshan
Thirupatchur Sanjayasarathy, Thiagarajan
Krishnan, Sharath Navalpakkam
Kabaleeswaran, Dinesh Kannan
Ramanathan, Subbu
Narayanasamy, Narendran
Jagathrakshakan, Sharan Srinivas
Vignesh, S. R.
Energetics Based Spike Generation of a Single Neuron: Simulation Results and Analysis
title Energetics Based Spike Generation of a Single Neuron: Simulation Results and Analysis
title_full Energetics Based Spike Generation of a Single Neuron: Simulation Results and Analysis
title_fullStr Energetics Based Spike Generation of a Single Neuron: Simulation Results and Analysis
title_full_unstemmed Energetics Based Spike Generation of a Single Neuron: Simulation Results and Analysis
title_short Energetics Based Spike Generation of a Single Neuron: Simulation Results and Analysis
title_sort energetics based spike generation of a single neuron: simulation results and analysis
topic Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3269776/
https://www.ncbi.nlm.nih.gov/pubmed/22347180
http://dx.doi.org/10.3389/fnene.2012.00002
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