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research article

Strong and reliable synaptic communication between pyramidal neurons in adult human cerebral cortex

Hunt, Sarah
•
Leibner, Yoni
•
Mertens, Eline J.
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July 8, 2022
Cerebral Cortex

Synaptic transmission constitutes the primary mode of communication between neurons. It is extensively studied in rodent but not human neocortex. We characterized synaptic transmission between pyramidal neurons in layers 2 and 3 using neurosurgically resected human middle temporal gyrus (MTG, Brodmann area 21), which is part of the distributed language circuitry. We find that local connectivity is comparable with mouse layer 2/3 connections in the anatomical homologue (temporal association area), but synaptic connections in human are 3-fold stronger and more reliable (0% vs 25% failure rates, respectively). We developed a theoretical approach to quantify properties of spinous synapses showing that synaptic conductance and voltage change in human dendritic spines are 3-4-folds larger compared with mouse, leading to significant NMDA receptor activation in human unitary connections. This model prediction was validated experimentally by showing that NMDA receptor activation increases the amplitude and prolongs decay of unitary excitatory postsynaptic potentials in human but not in mouse connections. Since NMDA-dependent recurrent excitation facilitates persistent activity (supporting working memory), our data uncovers cortical microcircuit properties in human that may contribute to language processing in MTG.

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Type
research article
DOI
10.1093/cercor/bhac246
Web of Science ID

WOS:000825715100001

Author(s)
Hunt, Sarah
Leibner, Yoni
Mertens, Eline J.
Barros-Zulaica, Natali  
Kanari, Lida  
Heistek, Tim S.
Karnani, Mahesh M.
Aardse, Romy
Wilbers, Rene
Heyer, Djai B.
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Date Issued

2022-07-08

Publisher

OXFORD UNIV PRESS INC

Published in
Cerebral Cortex
Subjects

Neurosciences

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Neurosciences & Neurology

•

synaptic transmission

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cortex

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l2

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l3

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human brain

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nmda receptor

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working-memory

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nmda receptors

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time constants

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local networks

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barrel cortex

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layer 2/3

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connections

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plasticity

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pairs

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impact

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
BBP-CORE  
Available on Infoscience
August 1, 2022
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/189710
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