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  4. Response Adaptation in Barrel Cortical Neurons Facilitates Stimulus Detection during Rhythmic Whisker Stimulation in Anesthetized Mice
 
research article

Response Adaptation in Barrel Cortical Neurons Facilitates Stimulus Detection during Rhythmic Whisker Stimulation in Anesthetized Mice

Barros-Zulaica, Natali  
•
Villa, Alessandro E. P.
•
Nunez, Angel
March 1, 2019
eneuro

Rodents use rhythmic whisker movements at frequencies between 4 and 12 Hz to sense the environment that will be disturbed when the animal touches an object. The aim of this work is to study the response adaptation to rhythmic whisker stimulation trains at 4 Hz in the barrel cortex and the sensitivity of cortical neurons to changes in the timing of the stimulation pattern. Longitudinal arrays of four iridium oxide electrodes were used to obtain single-unit recordings in supragranular, granular, and infragranular neurons in urethane anesthetized mice. The stimulation protocol consisted in a stimulation train of three air puffs (20 ms duration each) in which the time interval between the first and the third stimuli was fixed (500 ms) and the time interval between the first and the second stimuli changed (regular: 250 ms; "accelerando": 375 ms; or "decelerando" stimulation train: 125 ms interval). Cortical neurons adapted strongly their response to regular stimulation trains. Response adaptation was reduced when accelerando or decelerando stimulation trains were applied. This facilitation of the shifted stimulus was mediated by activation of NMDA receptors because the effect was blocked by AP5. The facilitation was not observed in thalamic nuclei. Facilitation increased during periods of EEG activation induced by systemic application of IGF-I, probably by activation of NMDA receptors, as well. We suggest that response adaptation is the outcome of an intrinsic cortical information processing aimed at contributing to improve the detection of "unexpected" stimuli that disturbed the rhythmic behavior of exploration.

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Type
research article
DOI
10.1523/ENEURO.0471-18.2019
Web of Science ID

WOS:000467170000045

Author(s)
Barros-Zulaica, Natali  
Villa, Alessandro E. P.
Nunez, Angel
Date Issued

2019-03-01

Publisher

Society for Neuroscience

Published in
eneuro
Volume

6

Issue

2

Start page

e0471

End page

18.2019

Subjects

Neurosciences

•

Neurosciences & Neurology

•

barrel cortex

•

igf-i

•

nmda

•

response adaptation

•

stimulation pattern

•

whisker movements

•

growth-factor-i

•

long-term potentiation

•

somatosensory cortex

•

brain-stem

•

information-transmission

•

temporal frequency

•

sensory adaptation

•

visual-cortex

•

plasticity

•

movement

Note

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

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
BBP-CORE  
Available on Infoscience
June 18, 2019
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/157489
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