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Gut Microbiota and Neurological Disorders: Unraveling the GutBrain Axis The Gut-Brain Axis in Neurological Disorders
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Recent scientific advancements have improved our
understanding of health and disease, yet some
neurological disorders remain poorly understood.
Gut microbiota is a diverse community of bacteria
residing in the gut, and they play a role in
digestion, metabolism, the immune system, and
neuronal functions. There is a bidirectional
communication system known as the gut-brain axis
(GBA) between the central nervous system and the
gut microbiota by neural, endocrine, and
immunological mechanisms. Gut microbiota
produces metabolites such as short-chain fatty acids
(SCFAs), neurotransmitters, and hormones that
regulate brain function and behavior. Alteration of
gut microbiota or dysbiosis is associated with
neurological disorders such as Alzheimer's disease,
Parkinson's disease, multiple sclerosis, and
depression. Changes in microbiota composition can
cause systemic inflammation, regulate the
concentrations of neurotransmitters, and affect the
integrity of the blood-brain barrier, resulting in
neurodegeneration. New therapeutic modalities,
including probiotics, prebiotics, nutritional
intervention, and fecal microbiota transplantation,
have been developed to re-establish homeostasis
within the gut and halt disease progression.
Metagenomics and artificial intelligence are
transforming microbiome research, enabling
targeted treatment based on the individualized
microbiota signature. Information on the gut-brain
axis offers promising directions for the
development of novel therapies in psychiatric and
neurodegenerative disorders
Title: Gut Microbiota and Neurological Disorders: Unraveling the GutBrain Axis The Gut-Brain Axis in Neurological Disorders
Description:
Recent scientific advancements have improved our
understanding of health and disease, yet some
neurological disorders remain poorly understood.
Gut microbiota is a diverse community of bacteria
residing in the gut, and they play a role in
digestion, metabolism, the immune system, and
neuronal functions.
There is a bidirectional
communication system known as the gut-brain axis
(GBA) between the central nervous system and the
gut microbiota by neural, endocrine, and
immunological mechanisms.
Gut microbiota
produces metabolites such as short-chain fatty acids
(SCFAs), neurotransmitters, and hormones that
regulate brain function and behavior.
Alteration of
gut microbiota or dysbiosis is associated with
neurological disorders such as Alzheimer's disease,
Parkinson's disease, multiple sclerosis, and
depression.
Changes in microbiota composition can
cause systemic inflammation, regulate the
concentrations of neurotransmitters, and affect the
integrity of the blood-brain barrier, resulting in
neurodegeneration.
New therapeutic modalities,
including probiotics, prebiotics, nutritional
intervention, and fecal microbiota transplantation,
have been developed to re-establish homeostasis
within the gut and halt disease progression.
Metagenomics and artificial intelligence are
transforming microbiome research, enabling
targeted treatment based on the individualized
microbiota signature.
Information on the gut-brain
axis offers promising directions for the
development of novel therapies in psychiatric and
neurodegenerative disorders.
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