The Microbiota-Gut-Brain Axis
Ось «микробиота — кишечник — мозг»
2019-08-28
SCID: 54.1/wj3h5gp4
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microbial metabolitesmicrobiota-gut-brain axismicroglia activationshort-chain fatty acidsvagus nerve
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Abstract (AI)
The importance of the gut-brain axis in maintaining homeostasis has long been appreciated. However, the past 15 yr have seen the emergence of the microbiota (the trillions of microorganisms within and on our bodies) as one of the key regulators of gut-brain function and has led to the appreciation of the importance of a distinct microbiota-gut-brain axis. This axis is gaining ever more traction in fields investigating the biological and physiological basis of psychiatric, neurodevelopmental, age-related, and neurodegenerative disorders. The microbiota and the brain communicate with each other via various routes including the immune system, tryptophan metabolism, the vagus nerve and the enteric nervous system, involving microbial metabolites such as short-chain fatty acids, branched chain amino acids, and peptidoglycans. Many factors can influence microbiota composition in early life, including infection, mode of birth delivery, use of antibiotic medications, the nature of nutritional provision, environmental stressors, and host genetics. At the other extreme of life, microbial diversity diminishes with aging. Stress, in particular, can significantly impact the microbiota-gut-brain axis at all stages of life. Much recent work has implicated the gut microbiota in many conditions including autism, anxiety, obesity, schizophrenia, Parkinson's disease, and Alzheimer's disease. Animal models have been paramount in linking the regulation of fundamental neural processes, such as neurogenesis and myelination, to microbiome activation of microglia. Moreover, translational human studies are ongoing and will greatly enhance the field. Future studies will focus on understanding the mechanisms underlying the microbiota-gut-brain axis and attempt to elucidate microbial-based intervention and therapeutic strategies for neuropsychiatric disorders.
Key Findings
1
Animal models link microbiota influence to neural processes (neurogenesis, myelination) through microglial activation, supporting microbiota involvement in disorders like autism, anxiety, obesity, schizophrenia, Parkinson's, and Alzheimer's.
2
Communication between microbiota and brain occurs via immune signaling, tryptophan metabolism, the vagus nerve, the enteric nervous system, and microbial metabolites (SCFAs, BCAAs, peptidoglycans).
3
Early-life factors (infection, birth mode, antibiotics, nutrition, stress, host genetics) shape microbiota composition, while microbial diversity diminishes with aging.
4
Stress significantly impacts the microbiota-gut-brain axis across the lifespan.
5
The microbiota is a key regulator of gut-brain function, establishing a distinct microbiota-gut-brain axis recognized over the past 15 years.
6
Translational human studies are ongoing and future research aims to elucidate mechanisms and develop microbial-based interventions for neuropsychiatric disorders.
Research Object
Microbiota-gut-brain axis (the integrated system of host gut microbiota, gastrointestinal tract, and brain communication pathways)
Research Subject
Mechanisms and roles by which the gut microbiota influences brain function and behavior, including immune, metabolic (e.g., tryptophan metabolism, microbial metabolites), neural (vagus nerve, enteric nervous system) pathways, and implications for neurodevelopmental, psychiatric, age-related, and neurodegenerative disorders
Publication Details
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2019-08-28
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