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April 26, 2026Cell Reports0 citationsOpen Access

Intralaminar thalamus relays basal ganglia output to the insular cortex to drive tic generation

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HKHiroto KunoNTNatsumi TsujiKKKenta Kobayashi

Key Points

  • The study aims to uncover the neuronal mechanisms driving tic generation in Tourette syndrome.
  • Established a mouse model of tic-like movements via unilateral striatal GABAA receptor antagonist injection.
  • Utilized fiber photometry to measure activity in the insular cortex and motor cortex.
  • Demonstrated thalamo-insular pathway transmission using viral tracing and assessed tic inhibition through chemogenetic methods.
  • Chemogenetic inhibition of the insular cortex reduced tic-like behaviors and associated cortical activity (p<0.05).
  • c-Fos activation was detected in motor and limbic areas, including the insular cortex and primary motor cortex.
  • Found that the intralaminar thalamus acts as a relay for basal ganglia outputs to the insular cortex.

Abstract

Motor and vocal tics accompanied by premonitory urges are hallmark symptoms of Tourette syndrome (TS), yet the underlying neuronal mechanisms remain incompletely understood. Here, we establish a mouse model of tic-like movements by unilateral striatal injection of a GABAA receptor antagonist. This model induces c-Fos activation in both motor and limbic structures, including the insular cortex (IC). Fiber photometry reveals tic-associated activity in IC as well as the primary motor cortex (M1). Viral tracing demonstrates that basal ganglia outputs from the substantia nigra pars reticulata are transmitted to IC via the intralaminar thalamic nuclei (ITN). Chemogenetic inhibition of IC or the thalamo-insular pathway suppresses tic-like behaviors and reduces tic-associated cortical activity. These findings identify IC as a candidate node involved in tic generation and highlight ITN as relay stations linking motor and limbic circuits. Aberrant thalamo-insular signaling may contribute to tic-related pathophysiology and represents a potential circuit-level therapeutic target.

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Cite This Study

Kuno et al. (2026) studied this question.

synapsesocial.com/papers/69edaafc4a46254e215b338bhttps://doi.org/10.1016/j.celrep.2026.117272
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