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Immunohistochemical Visualization of Hippocampal Neuron Activity After Spatial Learning in a Mouse Model of Neurodevelopmental Disorders
Published on: May 12, 2015
Targeting S100A9 attenuates social dysfunction by modulating neuroinflammation and myelination in a mouse model of
Hong Gong1, Yao Lu2, Shi-Long Deng3
1Department of Military Cognitive Psychology, School of Psychology, Third Military Medical University (Army Medical University), Chongqing 40038, China.
Abstract:
Growing evidence supports a role for dysregulated neuroinflammation in autism. However, the underlying mechanisms of microglia-evoked neuroinflammation in the development of autistic phenotypes have not been elucidated. This study aimed to investigate the role and underlying mechanisms of microglial S100 calcium-binding protein A9 (S100A9) in autistic phenotypes. We utilized the BTBR T + tf/J (BTBR) mouse, a reliable preclinical model for autism that displays core behavioral features of autism as well as persistent immune dysregulation. A combination of behavioral, pharmacological, immunological, genetic, molecular, and transcriptomics approaches were used to uncover the potential role of S100A9 in autism. Significant overexpression of microglial S100A9 was observed in the hippocampus of BTBR mice. BTBR mice displayed decreased social communication and increased repetitive behaviors compared to C57BL/6 mice. Interestingly, the above social dysfunction was attenuated by a pharmacological inhibitor of S100A9, accompanied by a significant reduction in the activated microglia morphological phenotype, inflammatory receptors, and proinflammatory cytokines. Notably, S100A9 inhibition decreased c-Fos+ cells and promoted myelination in the cornu ammonis 3 of BTBR mice. Furthermore, the promyelinating compound administration ameliorated the autism-relevant behaviors in BTBR mice. Our findings indicate that microglia-derived S100A9 triggers the neuroinflammation cascade, myelination deficits, and social dysfunction. Targeting S100A9 could, therefore, be a promising therapeutic strategy for neuroinflammation-related neurodevelopmental disorders.
Insights
Microglia-derived S100A9 drives neuroinflammation and social deficits in autism models. Inhibiting S100A9 shows promise for treating autism-related neurodevelopmental disorders.
Area of Science:
- Neuroscience
- Immunology
- Genetics
Background:
- Neuroinflammation is implicated in autism spectrum disorder (ASD).
- The specific mechanisms of microglia-driven neuroinflammation in ASD phenotypes remain unclear.
- Microglial S100 calcium-binding protein A9 (S100A9) is a potential mediator.
Purpose of the Study:
- To investigate the role and mechanisms of microglial S100A9 in autistic phenotypes.
- To explore S100A9 as a therapeutic target for ASD.
Main Methods:
- Utilized the BTBR mouse model of autism.
- Employed behavioral, pharmacological, immunological, genetic, molecular, and transcriptomics analyses.
- Administered a pharmacological S100A9 inhibitor and a promyelinating compound.
Main Results:
- BTBR mice showed increased microglial S100A9, reduced social communication, and increased repetitive behaviors.
- S100A9 inhibition improved social behavior, reduced microglial activation and inflammation, and promoted myelination.
- Promyelinating compound administration ameliorated autism-relevant behaviors.
Conclusions:
- Microglia-derived S100A9 contributes to neuroinflammation, myelination deficits, and social dysfunction in an autism model.
- Targeting S100A9 represents a potential therapeutic strategy for neuroinflammation-related neurodevelopmental disorders.

