Literature DB >> 29117560

Timed Synaptic Inhibition Shapes NMDA Spikes, Influencing Local Dendritic Processing and Global I/O Properties of Cortical Neurons.

Michael Doron1, Giuseppe Chindemi2, Eilif Muller2, Henry Markram2, Idan Segev3.   

Abstract

The NMDA spike is a long-lasting nonlinear phenomenon initiated locally in the dendritic branches of a variety of cortical neurons. It plays a key role in synaptic plasticity and in single-neuron computations. Combining dynamic system theory and computational approaches, we now explore how the timing of synaptic inhibition affects the NMDA spike and its associated membrane current. When impinging on its early phase, individual inhibitory synapses strongly, but transiently, dampen the NMDA spike; later inhibition prematurely terminates it. A single inhibitory synapse reduces the NMDA-mediated Ca2+ current, a key player in plasticity, by up to 45%. NMDA spikes in distal dendritic branches/spines are longer-lasting and more resilient to inhibition, enhancing synaptic plasticity at these branches. We conclude that NMDA spikes are highly sensitive to dendritic inhibition; sparse weak inhibition can finely tune synaptic plasticity both locally at the dendritic branch level and globally at the level of the neuron's output.
Copyright © 2017 The Authors. Published by Elsevier Inc. All rights reserved.

Entities:  

Keywords:  NMDA-spike; cortical pyramidal cells; dendritic spines; nonlinear dendrites; synaptic inhibition; synaptic plasticity

Mesh:

Substances:

Year:  2017        PMID: 29117560     DOI: 10.1016/j.celrep.2017.10.035

Source DB:  PubMed          Journal:  Cell Rep            Impact factor:   9.423


  15 in total

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5.  Synaptic Input and ACh Modulation Regulate Dendritic Ca2+ Spike Duration in Pyramidal Neurons, Directly Affecting Their Somatic Output.

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7.  Determination of effective synaptic conductances using somatic voltage clamp.

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Journal:  PLoS Comput Biol       Date:  2019-03-05       Impact factor: 4.475

8.  Local glutamate-mediated dendritic plateau potentials change the state of the cortical pyramidal neuron.

Authors:  Peng P Gao; Joseph W Graham; Wen-Liang Zhou; Jinyoung Jang; Sergio Angulo; Salvador Dura-Bernal; Michael Hines; William W Lytton; Srdjan D Antic
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9.  Inhibition enhances spatially-specific calcium encoding of synaptic input patterns in a biologically constrained model.

Authors:  Daniel B Dorman; Joanna Jędrzejewska-Szmek; Kim T Blackwell
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10.  Human Cortical Pyramidal Neurons: From Spines to Spikes via Models.

Authors:  Guy Eyal; Matthijs B Verhoog; Guilherme Testa-Silva; Yair Deitcher; Ruth Benavides-Piccione; Javier DeFelipe; Christiaan P J de Kock; Huibert D Mansvelder; Idan Segev
Journal:  Front Cell Neurosci       Date:  2018-06-29       Impact factor: 5.505

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