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Inhibition of bAPs and Ca2+ spikes in a multi-compartment pyramidal neuron model (Wilmes et al 2016)
 
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Model Information
Model File
Citations
Accession:
187603
"Synaptic plasticity is thought to induce memory traces in the brain that are the foundation of learning. To ensure the stability of these traces in the presence of further learning, however, a regulation of plasticity appears beneficial. Here, we take up the recent suggestion that dendritic inhibition can switch plasticity of excitatory synapses on and off by gating backpropagating action potentials (bAPs) and calcium spikes, i.e., by gating the coincidence signals required for Hebbian forms of plasticity. We analyze temporal and spatial constraints of such a gating and investigate whether it is possible to suppress bAPs without a simultaneous annihilation of the forward-directed information flow via excitatory postsynaptic potentials (EPSPs). In a computational analysis of conductance-based multi-compartmental models, we demonstrate that a robust control of bAPs and calcium spikes is possible in an all-or-none manner, enabling a binary switch of coincidence signals and plasticity. ..."
Reference:
1 .
Wilmes KA, Sprekeler H, Schreiber S (2016) Inhibition as a Binary Switch for Excitatory Plasticity in Pyramidal Neurons.
PLoS Comput Biol
12
:e1004768
[
PubMed
]
Model Information
(Click on a link to find other models with that property)
Model Type:
Neuron or other electrically excitable cell;
Brain Region(s)/Organism:
Neocortex;
Hippocampus;
Cell Type(s):
Hippocampus CA1 pyramidal GLU cell;
Neocortex L5/6 pyramidal GLU cell;
Channel(s):
Gap Junctions:
Receptor(s):
Gene(s):
Transmitter(s):
Simulation Environment:
NEURON;
Python;
Model Concept(s):
Dendritic Action Potentials;
Synaptic Plasticity;
Synaptic Integration;
Implementer(s):
Wilmes, Katharina A. [katharina.wilmes at googlemail.com];
Search NeuronDB
for information about:
Hippocampus CA1 pyramidal GLU cell
;
Neocortex L5/6 pyramidal GLU cell
;
/
WilmesEtAl2016
mod_files
cad2.mod
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hh2.mod
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hh3.mod
it2.mod
*
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Mechanisms of magnetic stimulation of central nervous system neurons (Pashut et al. 2011)
Pyramidal neuron coincidence detection tuned by dendritic branching pattern (Schaefer et al 2003)
STDP depends on dendritic synapse location (Letzkus et al. 2006)
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kap.mod
*
Other models using kap.mod:
Spike-timing dependent inhibitory plasticity for gating bAPs (Wilmes et al 2017)
kca.mod
*
Other models using kca.mod:
Mechanisms of magnetic stimulation of central nervous system neurons (Pashut et al. 2011)
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Pyramidal neuron coincidence detection tuned by dendritic branching pattern (Schaefer et al 2003)
STDP depends on dendritic synapse location (Letzkus et al. 2006)
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kdrca1.mod
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BCM-like synaptic plasticity with conductance-based models (Narayanan Johnston, 2010)
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na3.mod
*
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CA1 pyramidal neuron (Migliore et al 1999)
CA1 pyramidal neuron: action potential backpropagation (Gasparini & Migliore 2015)
CA1 pyramidal neuron: conditional boosting of dendritic APs (Watanabe et al 2002)
CA1 pyramidal neuron: integration of subthreshold inputs from PP and SC (Migliore 2003)
Estimation and Production of Time Intervals (Migliore et al 2001)
Modulation of hippocampal rhythms by electric fields and network topology (Berzhanskaya et al. 2013)
Neurophysiological impact of inactivation pathways in A-type K+ channels (Fineberg et al 2012)
Spike-timing dependent inhibitory plasticity for gating bAPs (Wilmes et al 2017)
na3dend.mod
na3shifted.mod
*
Other models using na3shifted.mod:
Spike-timing dependent inhibitory plasticity for gating bAPs (Wilmes et al 2017)
sca.mod
*
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Mechanisms of magnetic stimulation of central nervous system neurons (Pashut et al. 2011)
Pyramidal neuron coincidence detection tuned by dendritic branching pattern (Schaefer et al 2003)
Synaptic integration in tuft dendrites of layer 5 pyramidal neurons (Larkum et al. 2009)
stdp_ca.mod
stdp_m.mod
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