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A cortical filter that learns to suppress the acoustic consequences of movement.

Publication ,  Journal Article
Schneider, DM; Sundararajan, J; Mooney, R
Published in: Nature
September 2018

Sounds can arise from the environment and also predictably from many of our own movements, such as vocalizing, walking, or playing music. The capacity to anticipate these movement-related (reafferent) sounds and distinguish them from environmental sounds is essential for normal hearing1,2, but the neural circuits that learn to anticipate the often arbitrary and changeable sounds that result from our movements remain largely unknown. Here we developed an acoustic virtual reality (aVR) system in which a mouse learned to associate a novel sound with its locomotor movements, allowing us to identify the neural circuit mechanisms that learn to suppress reafferent sounds and to probe the behavioural consequences of this predictable sensorimotor experience. We found that aVR experience gradually and selectively suppressed auditory cortical responses to the reafferent frequency, in part by strengthening motor cortical activation of auditory cortical inhibitory neurons that respond to the reafferent tone. This plasticity is behaviourally adaptive, as aVR-experienced mice showed an enhanced ability to detect non-reafferent tones during movement. Together, these findings describe a dynamic sensory filter that involves motor cortical inputs to the auditory cortex that can be shaped by experience to selectively suppress the predictable acoustic consequences of movement.

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Published In

Nature

DOI

EISSN

1476-4687

Publication Date

September 2018

Volume

561

Issue

7723

Start / End Page

391 / 395

Location

England

Related Subject Headings

  • Neural Inhibition
  • Movement
  • Motor Cortex
  • Models, Neurological
  • Mice
  • Male
  • Locomotion
  • General Science & Technology
  • Female
  • Auditory Cortex
 

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Schneider, D. M., Sundararajan, J., & Mooney, R. (2018). A cortical filter that learns to suppress the acoustic consequences of movement. Nature, 561(7723), 391–395. https://doi.org/10.1038/s41586-018-0520-5
Schneider, David M., Janani Sundararajan, and Richard Mooney. “A cortical filter that learns to suppress the acoustic consequences of movement.Nature 561, no. 7723 (September 2018): 391–95. https://doi.org/10.1038/s41586-018-0520-5.
Schneider DM, Sundararajan J, Mooney R. A cortical filter that learns to suppress the acoustic consequences of movement. Nature. 2018 Sep;561(7723):391–5.
Schneider, David M., et al. “A cortical filter that learns to suppress the acoustic consequences of movement.Nature, vol. 561, no. 7723, Sept. 2018, pp. 391–95. Pubmed, doi:10.1038/s41586-018-0520-5.
Schneider DM, Sundararajan J, Mooney R. A cortical filter that learns to suppress the acoustic consequences of movement. Nature. 2018 Sep;561(7723):391–395.
Journal cover image

Published In

Nature

DOI

EISSN

1476-4687

Publication Date

September 2018

Volume

561

Issue

7723

Start / End Page

391 / 395

Location

England

Related Subject Headings

  • Neural Inhibition
  • Movement
  • Motor Cortex
  • Models, Neurological
  • Mice
  • Male
  • Locomotion
  • General Science & Technology
  • Female
  • Auditory Cortex