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Updated: Dec 25, 2025

Intracerebroventricular Delivery of Gut-Derived Microbial Metabolites in Freely Moving Mice
Published on: June 2, 2022
Dysregulation of synaptic pruning as a possible link between intestinal microbiota dysbiosis and neuropsychiatric
Ahmed Eltokhi1, Isabel E Janmaat2, Mohamed Genedi2
1Department of Neurology and Epileptology, Hertie Institute for Clinical Brain Research, Eberhard Karls University Tubingen, Tubingen, Germany.
Insights
Altered gut microbiota is linked to neuropsychiatric disorders by affecting synaptic pruning in the brain. Modulating the gut microbiota may improve brain function and treat these conditions.
Area of Science:
- Neuroscience
- Microbiology
- Psychiatry
Background:
- The prenatal and early postnatal periods are critical for brain development and coincide with gut microbiota maturation.
- The microbiota-gut-brain axis facilitates bidirectional communication, influencing brain development and overall health.
- Microbiota alterations are implicated in various neuropsychiatric disorders, including autism, ADHD, schizophrenia, and bipolar disorder.
Purpose of the Study:
- To review the connection between neuropsychiatric disorders and intestinal microbiota composition.
- To focus on the impact of microbiota on synaptic pruning, a key brain maturation process.
- To explore therapeutic strategies involving microbiota modulation for neuropsychiatric conditions.
Main Methods:
- Literature review dissecting the link between neuropsychiatric disorders and intestinal microbiota.
- Analysis of how dysbiosis affects synaptic pruning in specific disorders.
- Review of interventions like diet changes, probiotics, prebiotics, and fecal microbiota transplantation.
Main Results:
- Synaptic pruning is dysregulated in various neuropsychiatric disorders, influenced by gut microbiota changes.
- Improvements in microbiota composition through interventions may enhance neuropsychiatric functioning.
- These improvements are partly explained by the optimization of synaptic pruning and neuronal connections.
Conclusions:
- The gut microbiota significantly influences brain function, particularly through microglial-induced synaptic pruning.
- Targeting the microbiota-immune crosstalk offers a promising therapeutic avenue for neuropsychiatric disorders.
- Further research into microbiota manipulation could lead to novel treatment strategies.
Abstract:
The prenatal and early postnatal stages represent a critical time window for human brain development. Interestingly, this window partly overlaps with the maturation of the intestinal flora (microbiota) that play a critical role in the bidirectional communication between the central and the enteric nervous systems (microbiota-gut-brain axis). The microbial composition has important influences on general health and the development of several organ systems, such as the gastrointestinal tract, the immune system, and also the brain. Clinical studies have shown that microbiota alterations are associated with a wide range of neuropsychiatric disorders including autism spectrum disorder, attention deficit hyperactivity disorder, schizophrenia, and bipolar disorder. In this review, we dissect the link between these neuropsychiatric disorders and the intestinal microbiota by focusing on their effect on synaptic pruning, a vital process in the maturation and establishing efficient functioning of the brain. We discuss in detail how synaptic pruning is dysregulated differently in the aforementioned neuropsychiatric disorders and how it can be influenced by dysbiosis and/or changes in the intestinal microbiota composition. We also review that the improvement in the intestinal microbiota composition by a change in diet, probiotics, prebiotics, or fecal microbiota transplantation may play a role in improving neuropsychiatric functioning, which can be at least partly explained via the optimization of synaptic pruning and neuronal connections. Altogether, the demonstration of the microbiota's influence on brain function via microglial-induced synaptic pruning addresses the possibility that the manipulation of microbiota-immune crosstalk represents a promising strategy for treating neuropsychiatric disorders.
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