Striatum

The striatum is a major component of the basal ganglia, a group of interconnected brain structures that helps regulate movement, learning, motivation, and action selection. It integrates excitatory signals from the cerebral cortex and thalamus with dopamine input from the midbrain, then uses GABA-releasing medium spiny neurons to shape basal ganglia output through direct and indirect pathways. In biology and neuroscience research, studying the striatum clarifies how neural circuits link sensory information, rewards, and behavioral choices. Its dysfunction contributes to conditions including Parkinson’s disease, Huntington’s disease, addiction, and other disorders involving movement, motivation, or habit formation.

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Research

JoVE EoE - Neurotherapeutics

Stereotactic Microinjection of a Viral Vector for Gene Manipulation in a Mouse Pup Striatum

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2025

Source: Chen, S., et al., Stereotaxic Surgery for Genetic Manipulation in Striatal Cells of Neonatal Mouse Brains. J. Vis. Exp. (2018)This video demonstrates the stereotaxic injection of a viral vector encoding Cre recombinase and green fluorescence protein or GFP into the striatum of a genetically modified mouse pup to achieve gene manipulation by excising a loxP-flanked STOP cassette, activating red fluorescence protein or RFP as a reporter.

Cortex-, Hippocampus-, Thalamus-, Hypothalamus-, Lateral Septal Nucleus- and Striatum-specific In Utero Electroporation in the C57BL/6 Mouse

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Cited by 14 •

2016

This protocol describes in detail how to specifically transfect different regions in the C57BL/6 central nervous system via in utero electroporation. Included in this protocol are detailed instructions for transfections of regions that develop into the cortex, hippocampus, thalamus, hypothalamus, lateral septal nucleus and striatum.

Modeling Fast-scan Cyclic Voltammetry Data from Electrically Stimulated Dopamine Neurotransmission Data Using QNsim1.0

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Cited by 2 •

2017

Fast-scan cyclic voltammetry can monitor in vivo dopamine neurotransmission in the context of drugs, disease, and other experimental manipulations. This work describes the implementation of QNsim1.0, a software to model electrically stimulated dopamine responses according to the quantitative neurobiological model to quantify estimates of dopamine release and reuptake dynamics.

Dissection and Culture of Mouse Dopaminergic and Striatal Explants in Three-Dimensional Collagen Matrix Assays

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Cited by 13 •

2012

Explants from the midbrain dopamine system and striatum are used in a collagen matrix assay for the in vitro analysis of mesostriatal and striatonigral pathway development. In this assay axonal outgrowth and guidance can be manipulated and quantified. It can also be modified for assessing other regions or molecular cues.

Modeling Intracerebral Hemorrhage in Mice: Injection of Autologous Blood or Bacterial Collagenase

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Cited by 60 •

2012

Clinically relevant animal models of intracerebral hemorrhage (ICH) are needed to extend our knowledge of hemorrhagic stroke and to examine novel therapeutic strategies. In this study, we describe and evaluate two ICH models that implement unilateral injections of either autologous whole blood or bacterial collagenase into the basal ganglia (corpus striatum) of mice.

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