Related Experiment Video
Updated: May 14, 2025

Single Synapse Indicators of Glutamate Release and Uptake in Acute Brain Slices from Normal and Huntington Mice
Published on: March 11, 2020
Disuse-driven plasticity in the human thalamus and putamen
Roselyne J Chauvin1, Dillan J Newbold2, Ashley N Nielsen1
1Department of Neurology, Washington University School of Medicine, St. Louis, MO 63110, USA.
None:
Subcortical plasticity has mainly been studied using invasive electrophysiology in animals. Here, we leverage precision functional mapping (PFM) to study motor plasticity in the human subcortex during 2 weeks of upper-extremity immobilization with daily resting-state and motor task fMRI. We found previously that, in the cortex, limb disuse drastically impacts disused primary motor cortex functional connectivity (FC) and is associated with spontaneous fMRI pulses. It remains unknown whether disuse-driven plasticity pulses and FC changes are cortex specific or whether they could also affect movement-critical nodes in the thalamus and striatum. Tailored analysis methods now show spontaneous disuse pulses and FC changes in the dorsal posterior putamen and central thalamus (centromedian [CM], ventral-intermediate [VIM], and ventroposterior-lateral nuclei), representing a motor circuit-wide plasticity phenomenon. The posterior putamen effects suggest plasticity in stimulus-driven habit circuitry. Importantly, thalamic plasticity effects are focal to nuclei used as deep brain stimulation targets for essential tremor/Parkinson's disease (VIM) and epilepsy/coma (CM).
Related Concept Videos
Neuroplasticity
Diencephalon: Anatomical Regions
Diencephalon: Thalamus and Information Relay
Somatosensation
Long-term Depression
Calcium Ion Concentration Mechanism
If over...
Long-term Potentiation

