ArticleFrontiers in neuroanatomy2025
Antibiotics-induced dysbiosis impacts dendritic morphology of adult mouse cortical interneurons.
Article in Frontiers in neuroanatomy, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 10 papers.
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Who cites it
10 citing papers in PubMed.
- Parental microbiome programming of early-life neurodevelopment: multi-niche contributions through the microbiome-gut-brain axis.Gut microbes · 2026Review
- Human milk microbiome as a modulator of the early-life gut-brain axis: mechanisms and translational opportunities for neurodevelopment.Journal of translational medicine · 2026Review
- Gestational dysbiosis is associated with altered early-life microbial seeding and favors pathobiont expansion in offspring.iScience · 2026Article
- E. Coli Nissle 1917 Attenuates Antibiotic Mediated Neurotoxicity Possibly Through Gut-Brain Axis in Zebrafish.Applied biochemistry and biotechnology · 2026Article
- Maternal gut dysbiosis is associated with altered enteric and cortical inhibitory circuit development.Frontiers in neuroanatomy · 2026Article
- Harnessing the microbiota-gut-brain axis to prevent and treat pediatric neurodevelopmental disorders: translational insights and strategies.Journal of translational medicine · 2025Review
- Electroacupuncture as adjunctive therapy for insomnia via targeting the GABAergic microbiota-gut-brain axis: a mini review.Frontiers in psychiatry · 2025Review
- Selective vulnerability of stellate cells to gut dysbiosis: neuroanatomical changes in the medial entorhinal cortex.Frontiers in neuroanatomy · 2025Article
- The microbiota-gut-brain axis in mental and neurodegenerative disorders: opportunities for prevention and intervention.Frontiers in aging neuroscience · 2025Review
- Digital transformation of care for keratoconus patients: ML modeling structural outcomes of corneal collagen cross-linking.Frontiers in medicine · 2025Article
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Authors and funding
16 authors.
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Abstract
Introduction: A growing body of evidence suggests that the gut microbiome may contribute to changes in brain morphology. The microbiota-gut-brain axis (MGBA) has been shown to influence neurogenesis, axon myelination, and synapse structure. However, it remains unclear whether the MGBA can influence the morphology and density of inhibitory GABAergic interneurons. The aim of this study was to determine whether antibiotic-induced dysbiosis (AID) is associated with alterations in dendritic morphology of GABAergic inhibitory interneurons in the medial entorhinal cortex (mEC), somatosensory cortex (SSC), motor cortex (MC), and hippocampus (Hp). Methods: A cohort of six-month-old GAD-67-EGFP transgenic mice was treated with an antibiotic cocktail for two weeks, resulting in gut dysbiosis as validated by collecting stool samples at baseline and after treatment, then using next-generation sequencing of 16S ribosomal RNA. Results: The results demonstrate that the proposed model effectively exhibited the defining features of gut dysbiosis, including a significant reduction in microbiome diversity, expansion of pathobionts, and loss of beneficial microbes. The AID group showed alterations in density and morphology of GABAergic interneurons in different brain areas. The mean dendritic length and mean dendritic segments of the SSC and Hp were found to be significantly decreased, while no such decrease was observed in the mEC or MC. Furthermore, the density of interneurons was decreased in the mEC, Hp, and SSC areas, while no change was observed in the MC area. Discussion: The interneuron dysfunction plays a role in the pathogenesis of neurological disease. The findings of this study suggest that AID potentially influences the density and morphology of the interneurons, which may contribute to the development of neurological disorders.
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