| Cerebellar Purkinje Cell: resurgent Na current and high frequency firing (Khaliq et al 2003) |
| Accession: 48332 |
These mod files supplied by Dr Raman are for the below two references. ... we modeled action potential firing by simulating eight currents directly recorded from Purkinje cells in both wild-type and (mutant) med mice.
Regular, high-frequency firing was slowed in med Purkinje neurons. In addition to disrupted sodium currents, med neurons had small
but significant changes in potassium and leak currents. Simulations indicated that these modified non-sodium currents could not
account for the reduced excitability of med cells but instead slightly facilitated spiking. The loss of NaV1.6-specific kinetics, however,
slowed simulated spontaneous activity. Together, the data suggest that across a range of conditions, sodium currents with a resurgent
component promote and accelerate firing. See papers for more and details. References: 1. Khaliq ZM, Gouwens NW, Raman IM (2003) The contribution of resurgent sodium current to high-frequency firing in Purkinje neurons: an experimental and modeling study. J Neurosci 23:4899-912 [PubMed] 2. Raman IM, Bean BP (2001) Inactivation and recovery of sodium currents in cerebellar Purkinje neurons: evidence for two mechanisms. Biophys J 80:729-37 [PubMed] |
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| README for the model files associated with the papers:
1. Khaliq ZM, Gouwens NW, Raman IM (2003)
The contribution of resurgent sodium current to high-frequency firing in
Purkinje neurons: an experimental and modeling study.
J Neurosci 23:4899-912 [PubMed]
2. Raman IM, Bean BP (2001)
Inactivation and recovery of sodium currents in cerebellar Purkinje
neurons: evidence for two mechanisms.
Biophys J 80:729-37
These models were written in NEURON. Sample use: Download and expand
the archive (zip) file. cd to the directory and run mknrndll (nrnivmodl
on unix). Then start up the simulation with
nrngui mosinit.hoc
You should see the recreation of graphs that are similar to the model curves
in figure 6 of paper 1 above. If you want to see a more exact recreation
change the time step to 0.025 (a larger time step of in some cases
1 ms is used in the default.ses file so that it does not take a long time
to reproduce the families of voltage clamp traces).
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