Literature DB >> 15140749

Modeling action potential generation and propagation in NRK fibroblasts.

J J Torres1, L N Cornelisse, E G A Harks, W P M Van Meerwijk, A P R Theuvenet, D L Ypey.   

Abstract

Normal rat kidney (NRK) fibroblasts change their excitability properties through the various stages of cell proliferation. The present mathematical model has been developed to explain excitability of quiescent (serum deprived) NRK cells. It includes as cell membrane components, on the basis of patch-clamp experiments, an inwardly rectifying potassium conductance (G(Kir)), an L-type calcium conductance (G(CaL)), a leak conductance (G(leak)), an intracellular calcium-activated chloride conductance [G(Cl(Ca))], and a gap junctional conductance (G(gj)), coupling neighboring cells in a hexagonal pattern. This membrane model has been extended with simple intracellular calcium dynamics resulting from calcium entry via G(CaL) channels, intracellular buffering, and calcium extrusion. It reproduces excitability of single NRK cells and cell clusters and intercellular action potential (AP) propagation in NRK cell monolayers. Excitation can be evoked by electrical stimulation, external potassium-induced depolarization, or hormone-induced intracellular calcium release. Analysis shows the roles of the various ion channels in the ultralong ( approximately 30 s) NRK cell AP and reveals the particular role of intracellular calcium dynamics in this AP. We support our earlier conclusion that AP generation and propagation may act as a rapid mechanism for the propagation of intracellular calcium waves, thus contributing to fast intercellular calcium signaling. The present model serves as a starting point to further analyze excitability changes during contact inhibition and cell transformation.

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Year:  2004        PMID: 15140749     DOI: 10.1152/ajpcell.00220.2003

Source DB:  PubMed          Journal:  Am J Physiol Cell Physiol        ISSN: 0363-6143            Impact factor:   4.249


  2 in total

1.  Stabilizing role of calcium store-dependent plasma membrane calcium channels in action-potential firing and intracellular calcium oscillations.

Authors:  J M A M Kusters; M M Dernison; W P M van Meerwijk; D L Ypey; A P R Theuvenet; C C A M Gielen
Journal:  Biophys J       Date:  2005-09-16       Impact factor: 4.033

2.  A model-based prediction of the calcium responses in the striatal synaptic spines depending on the timing of cortical and dopaminergic inputs and post-synaptic spikes.

Authors:  Takashi Nakano; Junichiro Yoshimoto; Kenji Doya
Journal:  Front Comput Neurosci       Date:  2013-09-13       Impact factor: 2.380

  2 in total

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