Advanced search
User account
Login
Register
Find models by
Model name
First author
Each author
Find models for
Brain region
Concept
Find models of
Realistic Microcircuits
Connectionist Networks
NMDA receptors enhance the fidelity of synaptic integration (Li and Gulledge 2021)
Download zip file
Auto-launch
Help downloading and running models
Model Information
Model File
Accession:
266802
Excitatory synaptic transmission in many neurons is mediated by two co-expressed ionotropic glutamate receptor subtypes, AMPA and NMDA receptors, that differ in their kinetics, ion-selectivity, and voltage-sensitivity. AMPA receptors have fast kinetics and are voltage-insensitive, while NMDA receptors have slower kinetics and increased conductance at depolarized membrane potentials. Here we report that the voltage-dependency and kinetics of NMDA receptors act synergistically to stabilize synaptic integration of excitatory postsynaptic potentials (EPSPs) across spatial and voltage domains. Simulations of synaptic integration in simplified and morphologically realistic dendritic trees revealed that the combined presence of AMPA and NMDA conductances reduces the variability of somatic responses to spatiotemporal patterns of excitatory synaptic input presented at different initial membrane potentials and/or in different dendritic domains. This moderating effect of the NMDA conductance on synaptic integration was robust across a wide range of AMPA-to-NMDA ratios, and results from synergistic interaction of NMDA kinetics (which reduces variability across membrane potential) and voltage-dependence (which favors stabilization across dendritic location). When combined with AMPA conductance, the NMDA conductance balances voltage- and impedance-dependent changes in synaptic driving force, and distance-dependent attenuation of synaptic potentials arriving at the axon, to increase the fidelity of synaptic integration and EPSP-spike coupling across neuron state (i.e., initial membrane potential) and dendritic location of synaptic input. Thus, synaptic NMDA receptors convey advantages for synaptic integration that are independent of, but fully compatible with, their importance for coincidence detection and synaptic plasticity.
Reference:
1 .
Li C, Gulledge AT (2021) NMDA receptors enhance the fidelity of synaptic integration
eNeuro
Citations
Citation Browser
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:
Cell Type(s):
Dentate gyrus granule GLU cell;
Hippocampus CA3 pyramidal GLU cell;
Channel(s):
I K;
I Na,t;
Gap Junctions:
Receptor(s):
AMPA;
NMDA;
Gene(s):
Transmitter(s):
Glutamate;
Simulation Environment:
NEURON;
Model Concept(s):
Synaptic Integration;
Implementer(s):
Search NeuronDB
for information about:
Dentate gyrus granule GLU cell
;
Hippocampus CA3 pyramidal GLU cell
;
AMPA
;
NMDA
;
I Na,t
;
I K
;
Glutamate
;
/
nmda_models
Figure_6_DGC
0_kv.mod
*
Other models using 0_kv.mod:
NMDA receptors enhance the fidelity of synaptic integration (Li and Gulledge 2021)
0_na.mod
*
Other models using 0_na.mod:
NMDA receptors enhance the fidelity of synaptic integration (Li and Gulledge 2021)
0_nmda.mod
*
Other models using 0_nmda.mod:
NMDA receptors enhance the fidelity of synaptic integration (Li and Gulledge 2021)
NMDA receptors enhance the fidelity of synaptic integration (Li and Gulledge 2021)
NMDA receptors enhance the fidelity of synaptic integration (Li and Gulledge 2021)
NMDA receptors enhance the fidelity of synaptic integration (Li and Gulledge 2021)
0_syn_g.mod
*
Other models using 0_syn_g.mod:
NMDA receptors enhance the fidelity of synaptic integration (Li and Gulledge 2021)
Description.txt
DGCBranches.dat
DGCmorph.hoc
DGCnseg.hoc
init_DGC.hoc
makeSv.hoc
RealThresh_Soma.hoc
File not selected
<- Select file from this column.