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research article

Pathway-, layer- and cell-type-specific thalamic input to mouse barrel cortex

Sermet, B. Semihcan  
•
Truschow, Pavel
•
Feyerabend, Michael
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December 20, 2019
Elife

Mouse primary somatosensory barrel cortex (wS1) processes whisker sensory information, receiving input from two distinct thalamic nuclei. The first-order ventral posterior medial (VPM) somatosensory thalamic nucleus most densely innervates layer 4 (L4) barrels, whereas the higher-order posterior thalamic nucleus (medial part, POm) most densely innervates L1 and L5A. We optogenetically stimulated VPM or POm axons, and recorded evoked excitatory postsynaptic potentials (EPSPs) in different cell-types across cortical layers in wS1. We found that excitatory neurons and parvalbumin-expressing inhibitory neurons received the largest EPSPs, dominated by VPM input to L4 and POm input to L5A. In contrast, somatostatin-expressing inhibitory neurons received very little input from either pathway in any layer. Vasoactive intestinal peptide-expressing inhibitory neurons received an intermediate level of excitatory input with less apparent layer-specificity. Our data help understand how wS1 neocortical microcircuits might process and integrate sensory and higher-order inputs.

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Type
research article
DOI
10.7554/eLife.52665
Web of Science ID

WOS:000504005600001

Author(s)
Sermet, B. Semihcan  
Truschow, Pavel
Feyerabend, Michael
Mayrhofer, Johannes M.  
Oram, Tess B.
Yizhar, Ofer
Staiger, Jochen F.
Petersen, Carl C. H.  
Date Issued

2019-12-20

Published in
Elife
Volume

8

Article Number

e52665

Subjects

Biology

•

Life Sciences & Biomedicine - Other Topics

•

expressing gabaergic neurons

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membrane-potential dynamics

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intrinsic firing patterns

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pyramidal neurons

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cortical interneurons

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synaptic responses

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projection neurons

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receptive-fields

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driver lines

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inhibition

Note

This is an open access article under the terms of the Creative Commons Attribution License

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LSENS  
Available on Infoscience
January 5, 2020
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/164347
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