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research article

High synaptic threshold for dendritic NMDA spike generation in human layer 2/3 pyramidal neurons

Testa-Silva, Guilherme
•
Rosier, Marius
•
Honnuraiah, Suraj  
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December 13, 2022
Cell Reports

Neurons receive synaptic input primarily onto their dendrites. While we know much about the electrical properties of dendrites in rodents, we have only just started to describe their properties in the human brain. Here, we investigate the capacity of human dendrites to generate NMDA-receptor-dependent spikes (NMDA spikes). Using dendritic glutamate iontophoresis, as well as local dendritic synaptic stimulation, we find that human layer 2/3 pyramidal neurons can generate dendritic NMDA spikes. The capacity to evoke NMDA spikes in human neurons, however, was significantly reduced compared with that in rodents. Simulations in morphologically realistic and simplified models indicated that human neurons have a higher synaptic threshold for NMDA spike generation primarily due to the wider diameter of their dendrites. In summary, we find reduced NMDA spike generation in human compared with rodent layer 2/3 pyramidal neurons and provide evidence that this is due to the wider diameter of human dendrites.

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Type
research article
DOI
10.1016/j.celrep.2022.111787
Web of Science ID

WOS:000900743200003

Author(s)
Testa-Silva, Guilherme
Rosier, Marius
Honnuraiah, Suraj  
Guzulaitis, Robertas
Megias, Ana Morello
French, Chris
King, James  
Drummond, Katharine
Palmer, Lucy M.
Stuart, Greg J.
Date Issued

2022-12-13

Published in
Cell Reports
Volume

41

Issue

11

Article Number

111787

Subjects

Cell Biology

•

basal dendrites

•

action-potentials

•

integration

•

neocortex

•

input

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LSENS  
Available on Infoscience
January 30, 2023
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/194486
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