Related Experiment Video
Updated: Aug 11, 2026

Induction of Maternal Immune Activation in Mice at Mid-gestation Stage with Viral Mimic PolyI:C
Published on: March 25, 2016
Deep brain stimulation during early adolescence prevents microglial alterations in a model of maternal immune
Ravit Hadar1, Le Dong2, Lucia Del-Valle-Anton2
1Department of Psychiatry and Psychotherapy, Medical Faculty Carl Gustav Carus, Technische Universitaet Dresden, Germany.
Insights
Deep brain stimulation during adolescence can prevent neuroinflammation in a rat model of schizophrenia. This intervention normalized microglia properties, suggesting a potential therapeutic strategy for preventing schizophrenia-related brain changes.
Area of Science:
- Neuroscience
- Developmental Neuroscience
- Psychiatry
Background:
- Schizophrenia is increasingly viewed as a neurodevelopmental disorder.
- Maternal immune activation (MIA) via poly I:C in rodents models schizophrenia's neurodevelopmental aspects.
- Neuroinflammation, particularly altered microglia, is linked to schizophrenia endophenotypes.
Purpose of the Study:
- To investigate the long-term effects of adolescent deep brain stimulation (DBS) on microglia in an adult MIA rat model.
- To determine if DBS can prevent neuroinflammatory changes associated with schizophrenia.
Main Methods:
- Utilized the poly I:C maternal immune activation (MIA) rat model.
- Administered deep brain stimulation (DBS) to the medial prefrontal cortex or nucleus accumbens during adolescence.
- Assessed microglia density, soma size, and pro-inflammatory cytokine mRNA in adulthood.
Main Results:
- MIA rats exhibited increased microglial density and soma size in the hippocampus and nucleus accumbens.
- DBS normalized microglia density and soma size in projection areas and around the electrode site.
- No changes in pro-inflammatory cytokine mRNA were observed before or after stimulation.
Conclusions:
- Adolescent DBS can prevent adult neuroinflammatory changes, specifically altered microglia properties, in the MIA rat model.
- DBS demonstrates potential as a preventive therapeutic strategy for the neuroinflammatory component of schizophrenia.
Abstract:
In recent years schizophrenia has been recognized as a neurodevelopmental disorder likely involving a perinatal insult progressively affecting brain development. The poly I:C maternal immune activation (MIA) rodent model is considered as a neurodevelopmental model of schizophrenia. Using this model we and others demonstrated the association between neuroinflammation in the form of altered microglia and a schizophrenia-like endophenotype. Therapeutic intervention using the anti-inflammatory drug minocycline affected altered microglia activation and was successful in the adult offspring. However, less is known about the effect of preventive therapeutic strategies on microglia properties. Previously we found that deep brain stimulation of the medial prefrontal cortex applied pre-symptomatically to adolescence MIA rats prevented the manifestation of behavioral and structural deficits in adult rats. We here studied the effects of deep brain stimulation during adolescence on microglia properties in adulthood. We found that in the hippocampus and nucleus accumbens, but not in the medial prefrontal cortex, microglial density and soma size were increased in MIA rats. Pro-inflammatory cytokine mRNA was unchanged in all brain areas before and after implantation and stimulation. Stimulation of either the medial prefrontal cortex or the nucleus accumbens normalized microglia density and soma size in main projection areas including the hippocampus and in the area around the electrode implantation. We conclude that in parallel to an alleviation of the symptoms in the rat MIA model, deep brain stimulation has the potential to prevent the neuroinflammatory component in this disease.
More Related Videos
09:09Generating a Reproducible Model of Mid-Gestational Maternal Immune Activation using PolyI:C to Study Susceptibility and Resilience in Offspring
Published on: August 17, 2022
04:20Author Spotlight: Exploring Microglial Interactions with Stress-Response Circuitry Using the Limited Bedding and Nesting Model
Published on: July 12, 2024