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Striatal Spiny Projection Neuron, inhibition enhances spatial specificity (Dorman et al 2018)
 
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Accession:
245411
We use a computational model of a striatal spiny projection neuron to investigate dendritic spine calcium dynamics in response to spatiotemporal patterns of synaptic inputs. We show that spine calcium elevation is stimulus-specific, with supralinear calcium elevation in cooperatively stimulated spines. Intermediate calcium elevation occurs in neighboring non-stimulated dendritic spines, predicting heterosynaptic effects. Inhibitory synaptic inputs enhance the difference between peak calcium in stimulated spines, and peak calcium in non-stimulated spines, thereby enhancing stimulus specificity.
Reference:
1 .
Dorman DB, Jedrzejewska-Szmek J, Blackwell KT (2018) Inhibition enhances spatially-specific calcium encoding of synaptic input patterns in a biologically constrained model.
Elife
, Kennedy, Mary B, ed.
[
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:
Basal ganglia;
Cell Type(s):
Neostriatum spiny neuron;
Channel(s):
Ca pump;
Kir;
I A;
I A, slow;
I CAN;
I K,Ca;
I Krp;
I Na,t;
I L high threshold;
I R;
I T low threshold;
IK Bkca;
IK Skca;
Na/Ca exchanger;
Gap Junctions:
Receptor(s):
AMPA;
NMDA;
GabaA;
Gene(s):
Cav3.2 CACNA1H;
Cav3.3 CACNA1I;
Cav1.2 CACNA1C;
Cav1.3 CACNA1D;
Cav2.2 CACNA1B;
Kv4.2 KCND2;
Kir2.1 KCNJ2;
Kv2.1 KCNB1;
Transmitter(s):
Gaba;
Glutamate;
Simulation Environment:
GENESIS;
Model Concept(s):
Calcium dynamics;
Detailed Neuronal Models;
Synaptic Integration;
Synaptic Plasticity;
Implementer(s):
Dorman, Daniel B ;
Search NeuronDB
for information about:
GabaA
;
AMPA
;
NMDA
;
I Na,t
;
I L high threshold
;
I T low threshold
;
I A
;
I K,Ca
;
I CAN
;
I A, slow
;
Na/Ca exchanger
;
I Krp
;
I R
;
Ca pump
;
Kir
;
IK Bkca
;
IK Skca
;
Gaba
;
Glutamate
;
Download the displayed file
/
modelDB_eLife2018
MScell
channels
.directory
BK.g
CaL12CDI.g
CaL13CDI.g
CaNCDI.g
*
Other models using CaNCDI.g:
Striatal Spiny Projection Neuron (SPN) plasticity rule (Jedrzejewska-Szmek et al 2016)
CaRCDI.g
CaT.g
CaT32.g
CaT33.g
CDI-GHK.g
chanplot.g
*
Other models using chanplot.g:
Striatal Spiny Projection Neuron (SPN) plasticity rule (Jedrzejewska-Szmek et al 2016)
chantest.g
GABA_tonic.g
*
Other models using GABA_tonic.g:
Striatal Spiny Projection Neuron (SPN) plasticity rule (Jedrzejewska-Szmek et al 2016)
KaF.g
KaS.g
Kir.g
*
Other models using Kir.g:
Calcium influx during striatal upstates (Evans et al. 2013)
Striatal Spiny Projection Neuron (SPN) plasticity rule (Jedrzejewska-Szmek et al 2016)
Krp.g
NaF.g
NaFslowinact.g
*
Other models using NaFslowinact.g:
Calcium influx during striatal upstates (Evans et al. 2013)
Striatal Spiny Projection Neuron (SPN) plasticity rule (Jedrzejewska-Szmek et al 2016)
NMDA_CDIGate.g
nmda_channel.g
SK.g
synaptic_channel.g
tabchanforms.g
*
Other models using tabchanforms.g:
Calcium influx during striatal upstates (Evans et al. 2013)
Striatal Spiny Projection Neuron (SPN) plasticity rule (Jedrzejewska-Szmek et al 2016)
[Dolphin] SortOrder=1 Sorting=2 Timestamp=2015,1,2,13,11,13 ViewMode=1
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