Related Experiment Video
Updated: Sep 16, 2025

Handwriting Analysis Indicates Spontaneous Dyskinesias in Neuroleptic Naïve Adolescents at High Risk for Psychosis
Published on: November 21, 2013
Abnormal hyperactivity of specific striatal ensembles encodes distinct dyskinetic behaviors revealed by
Cristina Alcacer1, Andreas Klaus2, Marcelo Mendonça3
1Champalimaud Research, Champalimaud Foundation, 1400-038 Lisbon, Portugal; Basal Ganglia Pathophysiology Unit, Lund University, 22184 Lund, Sweden; Systems Biology Department, University of Alcalá, 28805 Madrid, Spain; Institute Ramón y Cajal for Health Research, 28034 Madrid, Spain; Cajal Institute, Spanish National Research Council (CSIC), 28002 Madrid, Spain.
Abstract:
L-DOPA-induced dyskinesia (LID) is a debilitating complication of dopamine replacement therapy in Parkinson's disease and the most common hyperkinetic disorder of basal ganglia origin. Abnormal activity of striatal D1 and D2 spiny projection neurons (SPNs) is critical for LID, yet the link between SPN activity patterns and specific dyskinetic movements remains unknown. To explore this, we implemented a data-driven method for clustering movements based on high-resolution motion sensors and video recordings. In a mouse model of LID, this method identified two main dyskinesia types and pathological rotations, all absent during normal behavior. Using single-cell-resolution imaging, we found that specific sets of both D1- and D2-SPNs were abnormally active during these pathological movements. Under baseline conditions, these SPN sets were active during behaviors sharing physical features with LID movements. These findings indicate that ensembles of behavior-encoding D1- and D2-SPNs form new combinations of hyperactive neurons mediating specific dyskinetic features.
More Related Videos
13:08Measurement of Fronto-limbic Activity Using an Emotional Oddball Task in Children with Familial High Risk for Schizophrenia
Published on: December 2, 2015
10:18Photodiode-Based Optical Imaging for Recording Network Dynamics with Single-Neuron Resolution in Non-Transgenic Invertebrates
Published on: July 9, 2020