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The corresponding page is
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Modelling reduced excitability in aged CA1 neurons as a Ca-dependent process (Markaki et al. 2005)
 
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Accession:
119266
"We use a multi-compartmental model of a CA1 pyramidal cell to study changes in hippocampal excitability that result from aging-induced alterations in calcium-dependent membrane mechanisms. The model incorporates N- and L-type calcium channels which are respectively coupled to fast and slow afterhyperpolarization potassium channels. Model parameters are calibrated using physiological data. Computer simulations reproduce the decreased excitability of aged CA1 cells, which results from increased internal calcium accumulation, subsequently larger postburst slow afterhyperpolarization, and enhanced spike frequency adaptation. We find that aging-induced alterations in CA1 excitability can be modelled with simple coupling mechanisms that selectively link specific types of calcium channels to specific calcium-dependent potassium channels."
Reference:
1 .
Markaki M, Orphanoudakis S, Poirazi P (2005) Modelling reduced excitability in aged CA1 neurons as a calcium-dependent process
Neurocomputing
65-66
:305-314
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:
Hippocampus;
Cell Type(s):
Hippocampus CA1 pyramidal GLU cell;
Channel(s):
I Na,p;
I Na,t;
I L high threshold;
I N;
I A;
I K;
I M;
I K,Ca;
I R;
Gap Junctions:
Receptor(s):
Gene(s):
Transmitter(s):
Simulation Environment:
NEURON;
Model Concept(s):
Activity Patterns;
Aging/Alzheimer`s;
Implementer(s):
Search NeuronDB
for information about:
Hippocampus CA1 pyramidal GLU cell
;
I Na,p
;
I Na,t
;
I L high threshold
;
I N
;
I A
;
I K
;
I M
;
I K,Ca
;
I R
;
/
CA1_Aged
mechanism
cad.mod
cadL.mod
cadN.mod
cal.mod
can.mod
car.mod
cat.mod
d3.mod
*
Other models using d3.mod:
Amyloid-beta effects on release probability and integration at CA3-CA1 synapses (Romani et al. 2013)
CA1 pyramidal neuron (Combe et al 2018)
CA1 pyramidal neuron: as a 2-layer NN and subthreshold synaptic summation (Poirazi et al 2003)
CA1 pyramidal neuron: dendritic Ca2+ inhibition (Muellner et al. 2015)
CA1 pyramidal neuron: depolarization block (Bianchi et al. 2012)
CA1 pyramidal neuron: synaptic plasticity during theta cycles (Saudargiene et al. 2015)
CA1 pyramidal neuron: synaptically-induced bAP predicts synapse location (Sterratt et al. 2012)
CA1 pyramidal neuron: synaptically-induced bAP predicts synapse location (Sterratt et al. 2012)
Effects of increasing CREB on storage and recall processes in a CA1 network (Bianchi et al. 2014)
Layer V PFC pyramidal neuron used to study persistent activity (Sidiropoulou & Poirazi 2012)
Linear vs non-linear integration in CA1 oblique dendrites (Gómez González et al. 2011)
The APP in C-terminal domain alters CA1 neuron firing (Pousinha et al 2019)
h.mod
hha_old.mod
hha2.mod
ic.mod
kadist.mod
kaprox.mod
kca.mod
KdBG.mod
km.mod
nap.mod
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