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  4. From Neuron Biophysics to Orientation Selectivity in Electrically Coupled Networks of Neocortical L2/3 Large Basket Cells
 
research article

From Neuron Biophysics to Orientation Selectivity in Electrically Coupled Networks of Neocortical L2/3 Large Basket Cells

Amsalem, Oren
•
Van Geit, Werner
•
Muller, Eilif
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June 9, 2016
Cerebral Cortex

In the neocortex, inhibitory interneurons of the same subtype are electrically coupled with each other via dendritic gap junctions (GJs). The impact of multiple GJs on the biophysical properties of interneurons and thus on their input processing is unclear. The present experimentally based theoretical study examined GJs in L2/3 large basket cells (L2/3 LBCs) with 3 goals in mind: (1) To evaluate the errors due to GJs in estimating the cable properties of individual L2/3 LBCs and suggest ways to correct these errors when modeling these cells and the networks they form; (2) to bracket the GJ conductance value (0.05-0.25 nS) and membrane resistivity (10 000-40 000 Omega cm(2)) of L2/3 LBCs; these estimates are tightly constrained by in vitro input resistance (131 +/- 18.5 M Omega) and the coupling coefficient (1-3.5%) of these cells; and (3) to explore the functional implications of GJs, and show that GJs: (i) dynamically modulate the effective time window for synaptic integration; (ii) improve the axon's capability to encode rapid changes in synaptic inputs; and (iii) reduce the orientation selectivity, linearity index, and phase difference of L2/3 LBCs. Our study provides new insights into the role of GJs and calls for caution when using in vitro measurements for modeling electrically coupled neuronal networks.

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Type
research article
DOI
10.1093/cercor/bhw166
Web of Science ID

WOS:000383198900026

Author(s)
Amsalem, Oren
Van Geit, Werner
Muller, Eilif
Markram, Henry  
Segev, Idan
Date Issued

2016-06-09

Publisher

Oxford University Press (OUP)

Published in
Cerebral Cortex
Volume

26

Issue

8

Start page

3655

End page

3668

Subjects

electrical coupling

•

gap junctions

•

cortical interneurons

•

membrane time constant

•

visual cortex

Note

This article is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LNMC  
BBP-CORE  
Available on Infoscience
October 18, 2016
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/130389
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