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A biophysically detailed computational model of urinary bladder small DRG neuron soma

Bladder small DRG neurons, which are putative nociceptors pivotal to urinary bladder function, express more than a dozen different ionic membrane mechanisms: ion channels, pumps and exchangers. Small-conductance Ca(2+)-activated K(+) (SK(Ca)) channels which were earlier thought to be gated solely by...

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Autores principales: Mandge, Darshan, Manchanda, Rohit
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6066259/
https://www.ncbi.nlm.nih.gov/pubmed/30020934
http://dx.doi.org/10.1371/journal.pcbi.1006293
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author Mandge, Darshan
Manchanda, Rohit
author_facet Mandge, Darshan
Manchanda, Rohit
author_sort Mandge, Darshan
collection PubMed
description Bladder small DRG neurons, which are putative nociceptors pivotal to urinary bladder function, express more than a dozen different ionic membrane mechanisms: ion channels, pumps and exchangers. Small-conductance Ca(2+)-activated K(+) (SK(Ca)) channels which were earlier thought to be gated solely by intracellular Ca(2+) concentration ([Ca](i)) have recently been shown to exhibit inward rectification with respect to membrane potential. The effect of SK(Ca) inward rectification on the excitability of these neurons is unknown. Furthermore, studies on the role of K(Ca) channels in repetitive firing and their contributions to different types of afterhyperpolarization (AHP) in these neurons are lacking. In order to study these phenomena, we first constructed and validated a biophysically detailed single compartment model of bladder small DRG neuron soma constrained by physiological data. The model includes twenty-two major known membrane mechanisms along with intracellular Ca(2+) dynamics comprising Ca(2+) diffusion, cytoplasmic buffering, and endoplasmic reticulum (ER) and mitochondrial mechanisms. Using modelling studies, we show that inward rectification of SK(Ca) is an important parameter regulating neuronal repetitive firing and that its absence reduces action potential (AP) firing frequency. We also show that SK(Ca) is more potent in reducing AP spiking than the large-conductance K(Ca) channel (BK(Ca)) in these neurons. Moreover, BK(Ca) was found to contribute to the fast AHP (fAHP) and SK(Ca) to the medium-duration (mAHP) and slow AHP (sAHP). We also report that the slow inactivating A-type K(+) channel (slow K(A)) current in these neurons is composed of 2 components: an initial fast inactivating (time constant ∼ 25-100 ms) and a slow inactivating (time constant ∼ 200-800 ms) current. We discuss the implications of our findings, and how our detailed model can help further our understanding of the role of C-fibre afferents in the physiology of urinary bladder as well as in certain disorders.
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spelling pubmed-60662592018-08-13 A biophysically detailed computational model of urinary bladder small DRG neuron soma Mandge, Darshan Manchanda, Rohit PLoS Comput Biol Research Article Bladder small DRG neurons, which are putative nociceptors pivotal to urinary bladder function, express more than a dozen different ionic membrane mechanisms: ion channels, pumps and exchangers. Small-conductance Ca(2+)-activated K(+) (SK(Ca)) channels which were earlier thought to be gated solely by intracellular Ca(2+) concentration ([Ca](i)) have recently been shown to exhibit inward rectification with respect to membrane potential. The effect of SK(Ca) inward rectification on the excitability of these neurons is unknown. Furthermore, studies on the role of K(Ca) channels in repetitive firing and their contributions to different types of afterhyperpolarization (AHP) in these neurons are lacking. In order to study these phenomena, we first constructed and validated a biophysically detailed single compartment model of bladder small DRG neuron soma constrained by physiological data. The model includes twenty-two major known membrane mechanisms along with intracellular Ca(2+) dynamics comprising Ca(2+) diffusion, cytoplasmic buffering, and endoplasmic reticulum (ER) and mitochondrial mechanisms. Using modelling studies, we show that inward rectification of SK(Ca) is an important parameter regulating neuronal repetitive firing and that its absence reduces action potential (AP) firing frequency. We also show that SK(Ca) is more potent in reducing AP spiking than the large-conductance K(Ca) channel (BK(Ca)) in these neurons. Moreover, BK(Ca) was found to contribute to the fast AHP (fAHP) and SK(Ca) to the medium-duration (mAHP) and slow AHP (sAHP). We also report that the slow inactivating A-type K(+) channel (slow K(A)) current in these neurons is composed of 2 components: an initial fast inactivating (time constant ∼ 25-100 ms) and a slow inactivating (time constant ∼ 200-800 ms) current. We discuss the implications of our findings, and how our detailed model can help further our understanding of the role of C-fibre afferents in the physiology of urinary bladder as well as in certain disorders. Public Library of Science 2018-07-18 /pmc/articles/PMC6066259/ /pubmed/30020934 http://dx.doi.org/10.1371/journal.pcbi.1006293 Text en © 2018 Mandge, Manchanda http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Mandge, Darshan
Manchanda, Rohit
A biophysically detailed computational model of urinary bladder small DRG neuron soma
title A biophysically detailed computational model of urinary bladder small DRG neuron soma
title_full A biophysically detailed computational model of urinary bladder small DRG neuron soma
title_fullStr A biophysically detailed computational model of urinary bladder small DRG neuron soma
title_full_unstemmed A biophysically detailed computational model of urinary bladder small DRG neuron soma
title_short A biophysically detailed computational model of urinary bladder small DRG neuron soma
title_sort biophysically detailed computational model of urinary bladder small drg neuron soma
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6066259/
https://www.ncbi.nlm.nih.gov/pubmed/30020934
http://dx.doi.org/10.1371/journal.pcbi.1006293
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