The Gut-Brain Axis in Neurodegeneration: Mechanistic Links Between Dysbiosis and Neuropathology.

Background & Objective: The gut-brain axis is essentially a two-way communication system that physically connects the brain and the intestinal tract. The connection is mediated through a series of pathways, including neural, endocrine, and immune pathways. Gut dysbiosis, which is explained as an imbalance in the microbial community, has been linked to the causation of various neurodegenerative disorders such as Alzheimer's disease, Parkinson's disease, and multiple sclerosis. However, the pathological mechanisms in the brain are only partially known. The present review outlines the process of gut dysbiosis and neurodegeneration, detailing the roles of protein aggregation, neuroinflammation, barrier disruption, and neuroglial dysfunction. Then, extending the comparison to a range of neurodegenerative diseases, we discuss the possibility of common pathway therapeutics and actual microbiome-based treatment options planning from the standpoint of microbiome-directed interventions. Content/Findings: Gut dysbiosis triggers a definable cascade, starting with the disruption of the intestinal barrier and increased permeability (leaky gut), which allows bacterial products (lipopolysaccharides, bacterial amyloids) and pro-inflammatory cytokines to enter systemic circulation. Such peripheral changes weaken the blood-brain barrier and thus allow these factors to access the CNS, where they lead to neuroglial dysfunction (microglial priming, astrocytic reactivity, and oligodendrocyte injury) by disruption of glial homeostasis. CNS glial cell malfunction leads to the development of proteinopathies characteristic of each disease: amyloid and tau hyperphosphorylation in Alzheimer's disease through BACE1 upregulation and kinase activation; synuclein in Parkinson's disease via molecular mimicry, oxidative stress, and impaired clearance; and demyelination in multiple sclerosis through oligodendrocyte apoptosis. Oral bacteria such as Porphyromonas gingivalis aggravate this inflammatory loop through the direct invasion of the CNS and proteolytic cleavage of amyloid and tau. The vagus nerve is yet another pathway through which gut-derived inflammatory signals and pathological synuclein can be transmitted to the brain. Conclusion: The gut microbiome is more than just a correlate of neurodegeneration; it actively promotes neurodegenerative diseases through pathways that can be mechanistically defined. Microbiome-targeted interventions such as dietary changes, precision probiotics, fecal microbiota transplantation, and anti-inflammatory agents offer a measure of hope for changing these pathological processes. Future studies need to be directed at determining the time sequence of cause and effect, finding dependable microbiota-based biomarkers, and formulating tailored strategies that can account for individual microbial composition variability, genetic susceptibility, and environmental exposures. A deeper understanding of the gut-brain axis from this mechanistic perspective could eventually lead to the prevention or postponement of neurodegeneration.

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PubMed
Published
2026-09-01
DOI
https://doi.org/10.22034/ijp.2026.2081887.3613
Primary Topic
Gut microbiota and health
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article
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article

The Gut-Brain Axis in Neurodegeneration: Mechanistic Links Between Dysbiosis and Neuropathology.

Maryam Azimzadeh, Mohsen Eslami Farsani, Shima Ababzadeh, Reihaneh Seyedebrahimi et al.
PubMed
Gut microbiota and health
article

The Gut-Brain Axis in Neurodegeneration: Mechanistic Links Between Dysbiosis and Neuropathology.

Maryam Azimzadeh, Mohsen Eslami Farsani, Shima Ababzadeh, Reihaneh Seyedebrahimi, Seyyed Mohammad Hoseine Babaei, Ali Ganji Kahaki
article en

Abstract

Background & Objective: The gut-brain axis is essentially a two-way communication system that physically connects the brain and the intestinal tract. The connection is mediated through a series of pathways, including neural, endocrine, and immune pathways. Gut dysbiosis, which is explained as an imbalance in the microbial community, has been linked to the causation of various neurodegenerative disorders such as Alzheimer's disease, Parkinson's disease, and multiple sclerosis. However, the pathological mechanisms in the brain are only partially known. The present review outlines the process of gut dysbiosis and neurodegeneration, detailing the roles of protein aggregation, neuroinflammation, barrier disruption, and neuroglial dysfunction. Then, extending the comparison to a range of neurodegenerative diseases, we discuss the possibility of common pathway therapeutics and actual microbiome-based treatment options planning from the standpoint of microbiome-directed interventions. Content/Findings: Gut dysbiosis triggers a definable cascade, starting with the disruption of the intestinal barrier and increased permeability (leaky gut), which allows bacterial products (lipopolysaccharides, bacterial amyloids) and pro-inflammatory cytokines to enter systemic circulation. Such peripheral changes weaken the blood-brain barrier and thus allow these factors to access the CNS, where they lead to neuroglial dysfunction (microglial priming, astrocytic reactivity, and oligodendrocyte injury) by disruption of glial homeostasis. CNS glial cell malfunction leads to the development of proteinopathies characteristic of each disease: amyloid and tau hyperphosphorylation in Alzheimer's disease through BACE1 upregulation and kinase activation; synuclein in Parkinson's disease via molecular mimicry, oxidative stress, and impaired clearance; and demyelination in multiple sclerosis through oligodendrocyte apoptosis. Oral bacteria such as Porphyromonas gingivalis aggravate this inflammatory loop through the direct invasion of the CNS and proteolytic cleavage of amyloid and tau. The vagus nerve is yet another pathway through which gut-derived inflammatory signals and pathological synuclein can be transmitted to the brain. Conclusion: The gut microbiome is more than just a correlate of neurodegeneration; it actively promotes neurodegenerative diseases through pathways that can be mechanistically defined. Microbiome-targeted interventions such as dietary changes, precision probiotics, fecal microbiota transplantation, and anti-inflammatory agents offer a measure of hope for changing these pathological processes. Future studies need to be directed at determining the time sequence of cause and effect, finding dependable microbiota-based biomarkers, and formulating tailored strategies that can account for individual microbial composition variability, genetic susceptibility, and environmental exposures. A deeper understanding of the gut-brain axis from this mechanistic perspective could eventually lead to the prevention or postponement of neurodegeneration.

PubMedVol. 21(4)
Imam Khomeini Hospital (IR), Qom University of Medical Science and Health Services (IR)
Good health and well-being
Openalex Percentile: Top 16%
Gut microbiota and health
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