Modulation of neuronal dynamic range using two different adaptation mechanisms

The capability of neurons to discriminate between intensity of external stimulus is measured by its dynamic range. A larger dynamic range indicates a greater probability of neuronal survival. In this study, the potential roles of adaptation mechanisms (ion currents) in modulating neuronal dynamic ra...

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Main Authors: Lei Wang, Ye Wang, Wen-long Fu, Li-hong Cao
Format: Article
Language:English
Published: Wolters Kluwer Medknow Publications 2017-01-01
Series:Neural Regeneration Research
Subjects:
Online Access:http://www.nrronline.org/article.asp?issn=1673-5374;year=2017;volume=12;issue=3;spage=447;epage=451;aulast=Wang
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spelling doaj-7c3284fd306a431c970e7c2b18155dee2020-11-25T03:43:14ZengWolters Kluwer Medknow PublicationsNeural Regeneration Research1673-53742017-01-0112344745110.4103/1673-5374.202931Modulation of neuronal dynamic range using two different adaptation mechanismsLei WangYe WangWen-long FuLi-hong CaoThe capability of neurons to discriminate between intensity of external stimulus is measured by its dynamic range. A larger dynamic range indicates a greater probability of neuronal survival. In this study, the potential roles of adaptation mechanisms (ion currents) in modulating neuronal dynamic range were numerically investigated. Based on the adaptive exponential integrate-and-fire model, which includes two different adaptation mechanisms, i.e. subthreshold and suprathreshold (spike-triggered) adaptation, our results reveal that the two adaptation mechanisms exhibit rather different roles in regulating neuronal dynamic range. Specifically, subthreshold adaptation acts as a negative factor that observably decreases the neuronal dynamic range, while suprathreshold adaptation has little influence on the neuronal dynamic range. Moreover, when stochastic noise was introduced into the adaptation mechanisms, the dynamic range was apparently enhanced, regardless of what state the neuron was in, e.g. adaptive or non-adaptive. Our model results suggested that the neuronal dynamic range can be differentially modulated by different adaptation mechanisms. Additionally, noise was a non-ignorable factor, which could effectively modulate the neuronal dynamic range.http://www.nrronline.org/article.asp?issn=1673-5374;year=2017;volume=12;issue=3;spage=447;epage=451;aulast=Wangnerve regeneration; dynamic range; subthreshold adaptation; suprathreshold adaptation; noise; neuron; adaptive exponential integrate-and-fire model; ion currents; computer simulation; neural regeneration
collection DOAJ
language English
format Article
sources DOAJ
author Lei Wang
Ye Wang
Wen-long Fu
Li-hong Cao
spellingShingle Lei Wang
Ye Wang
Wen-long Fu
Li-hong Cao
Modulation of neuronal dynamic range using two different adaptation mechanisms
Neural Regeneration Research
nerve regeneration; dynamic range; subthreshold adaptation; suprathreshold adaptation; noise; neuron; adaptive exponential integrate-and-fire model; ion currents; computer simulation; neural regeneration
author_facet Lei Wang
Ye Wang
Wen-long Fu
Li-hong Cao
author_sort Lei Wang
title Modulation of neuronal dynamic range using two different adaptation mechanisms
title_short Modulation of neuronal dynamic range using two different adaptation mechanisms
title_full Modulation of neuronal dynamic range using two different adaptation mechanisms
title_fullStr Modulation of neuronal dynamic range using two different adaptation mechanisms
title_full_unstemmed Modulation of neuronal dynamic range using two different adaptation mechanisms
title_sort modulation of neuronal dynamic range using two different adaptation mechanisms
publisher Wolters Kluwer Medknow Publications
series Neural Regeneration Research
issn 1673-5374
publishDate 2017-01-01
description The capability of neurons to discriminate between intensity of external stimulus is measured by its dynamic range. A larger dynamic range indicates a greater probability of neuronal survival. In this study, the potential roles of adaptation mechanisms (ion currents) in modulating neuronal dynamic range were numerically investigated. Based on the adaptive exponential integrate-and-fire model, which includes two different adaptation mechanisms, i.e. subthreshold and suprathreshold (spike-triggered) adaptation, our results reveal that the two adaptation mechanisms exhibit rather different roles in regulating neuronal dynamic range. Specifically, subthreshold adaptation acts as a negative factor that observably decreases the neuronal dynamic range, while suprathreshold adaptation has little influence on the neuronal dynamic range. Moreover, when stochastic noise was introduced into the adaptation mechanisms, the dynamic range was apparently enhanced, regardless of what state the neuron was in, e.g. adaptive or non-adaptive. Our model results suggested that the neuronal dynamic range can be differentially modulated by different adaptation mechanisms. Additionally, noise was a non-ignorable factor, which could effectively modulate the neuronal dynamic range.
topic nerve regeneration; dynamic range; subthreshold adaptation; suprathreshold adaptation; noise; neuron; adaptive exponential integrate-and-fire model; ion currents; computer simulation; neural regeneration
url http://www.nrronline.org/article.asp?issn=1673-5374;year=2017;volume=12;issue=3;spage=447;epage=451;aulast=Wang
work_keys_str_mv AT leiwang modulationofneuronaldynamicrangeusingtwodifferentadaptationmechanisms
AT yewang modulationofneuronaldynamicrangeusingtwodifferentadaptationmechanisms
AT wenlongfu modulationofneuronaldynamicrangeusingtwodifferentadaptationmechanisms
AT lihongcao modulationofneuronaldynamicrangeusingtwodifferentadaptationmechanisms
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