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bioRxiv · 10.1101/370734

Distinct Cortical-Thalamic-Striatal Circuits Through the Parafascicular Nucleus

Abstract

The thalamic parafascicular nucleus (PF), an excitatory input to the basal ganglia, is targeted with deep-brain-stimulation to alleviate a range of neuropsychiatric symptoms. Furthermore, PF lesions disrupt the execution of correct motor actions in uncertain environments. Nevertheless, the circuitry of the PF and its contribution to action selection are poorly understood. We find that, in mice, PF forms the densest subcortical projection to the striatum. This projection arises from transcriptionally- and physiologically-distinct classes of PF neurons that are also reciprocally connected with functionally-distinct cortical regions, differentially innervate striatum neurons, and are not synaptically connected in PF. Thus, mouse PF contains heterogeneous neurons that are organized into parallel and independent associative, limbic, and motor circuits. Furthermore, these subcircuits share motifs of cortical-PF-cortical and cortical-PF-striatum organization that allow each PF subregion, via its precise connectivity with cortex, to coordinate diverse inputs to striatum.

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Mandelbaum, G., Taranda, J., Haynes, T., Hochbaum, D., Huang, K. W., Hyun, M., Venkataraju, K. U., Straub, C., Wang, W., Robertson, K., Osten, P., Sabatini, B.. 2018-07-16. Distinct Cortical-Thalamic-Striatal Circuits Through the Parafascicular Nucleus. https://doi.org/10.1101/370734

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