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Reactivated thalamocortical plasticity alters neural activity in sensory-motor cortex during post-critical period

  • Hyesoo Jie*
  • , Emily Petrus
  • , Nikorn Pothayee
  • , Alan P. Koretsky*
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

2 Scopus citations

Abstract

Neuroplasticity in sensory brain areas supports adaptation after nerve injury and fundamentally impacts sensation and movement. However, limited neuroplasticity in somatosensory areas due to the early critical period makes determining the role of thalamocortical (TC) inputs in sensorimotor signal processing challenging. Here, we demonstrated that reactivation of TC neuroplasticity was associated with an increase in the number of neurons in layer IV (L4) of the whisker primary somatosensory cortex (wS1) with a stable excitation-inhibition ratio. Highly synchronized neural activity in L4 propagated throughout the wS1 column and to the downstream areas, including whisker secondary somatosensory, primary motor cortices, and contralateral wS1. These results provide crucial evidence that TC inputs can alter the neural activity of sensory-motor pathways even after the critical period. Altogether, these enormous changes in sensorimotor circuit activity are important for adaptation following an injury such as limb loss, stroke, or other forms of neural injury.

Original languageEnglish
Article number102735
JournalProgress in Neurobiology
Volume247
DOIs
StatePublished - Apr 2025

Keywords

  • Homeostatic plasticity
  • Post-critical period neuroplasticity
  • Propagation of neural activity
  • Thalamocortical input
  • Whisker primary motor cortex
  • Whisker primary somatosensory cortex
  • Whisker secondary somatosensory cortex

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