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Updated: Jul 14, 2026

Isolation of Region-specific Microglia from One Adult Mouse Brain Hemisphere for Deep Single-cell RNA Sequencing
Published on: December 3, 2019
Human microglia in brain assembloids display region-specific diversity and respond to hyperexcitable neurons carrying
Jiaxiang Wu1,2, Xiaoling Chen1,2, Jingliang Zhang1,2
1Borch Department of Medicinal Chemistry and Molecular Pharmacology, College of Pharmacy, Purdue University, West Lafayette, IN 47907, USA.
Abstract:
Microglia critically shape neuronal circuit development and function, yet their region-specific properties and roles in distinct circuits of the human brain remain poorly understood. In this study, we generated region-specific brain organoids (cortical, striatal, and midbrain), each integrated with human microglia, to fill this critical gap. Single-cell RNA sequencing uncovered six distinct microglial subtypes exhibiting unique regional signatures, including a subtype highly enriched for the GABAB receptor gene within striatal organoids. To investigate the contributions of microglia to neural circuitry, we created microglia-incorporated midbrain-striatal assembloids, modeling a core circuit node for many neuropsychiatric disorders, including autism. Using chemogenetics to activate this midbrain-striatal circuit, we observed increased calcium signaling in microglia involving GABAB receptors. Leveraging this model, we examined microglial responses within neural circuits harboring an SCN2A nonsense (C959X) mutation associated with profound autism. Microglia displayed heightened calcium responses to SCN2A mutation-mediated neuronal hyperactivity and engaged in excessive synaptic pruning. These pathological effects were reversed not only by pharmacological inhibition of microglial GABAB receptors but also by knockout of the GABBR1 gene in microglia. Collectively, our findings establish an advanced platform that can be used to dissect human neuroimmune interactions in subcortical regions and to evaluate previously undiscovered therapies, highlighting the important role of microglia in shaping critical circuitry related to neuropsychiatric disorders.
Insights
Human microglia subtypes in brain organoids reveal roles in neurodevelopment and autism. Targeting microglial GABAB receptors offers a potential therapy for SCN2A mutation-associated autism by reducing synaptic pruning.
Area of Science:
- Neuroscience
- Immunology
- Developmental Biology
Background:
- Microglia are crucial for brain development and function, but their specific roles in human brain circuits are unclear.
- Region-specific human brain organoids offer a model to study microglial properties and interactions.
Purpose of the Study:
- To characterize region-specific human microglia and their roles in neural circuits.
- To investigate microglial involvement in autism spectrum disorder using a novel brain organoid model.
Main Methods:
- Generated region-specific human brain organoids (cortical, striatal, midbrain) with integrated microglia.
- Utilized single-cell RNA sequencing to identify microglial subtypes.
- Developed microglia-incorporated midbrain-striatal assembloids to model neuropsychiatric disorders.
Main Results:
- Identified six distinct microglial subtypes with unique regional signatures, including a GABAB receptor-enriched subtype in striatal organoids.
- Observed microglial calcium signaling via GABAB receptors upon circuit activation.
- Demonstrated that microglia contribute to excessive synaptic pruning in an autism model (SCN2A mutation).
- Showed that inhibiting microglial GABAB receptors or knocking out GABBR1 reversed pathological microglial effects.
Conclusions:
- Established an advanced platform for studying human neuroimmune interactions in subcortical regions.
- Highlighted the critical role of microglia in shaping neural circuitry relevant to neuropsychiatric disorders.
- Identified microglial GABAB receptors as a potential therapeutic target for autism.
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