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Gut microbiota of mice putatively modifies amino acid metabolism in the host brain
Takahiro Kawase1, Mao Nagasawa1, Hiromi Ikeda1
11Laboratory of Regulation in Metabolism and Behavior,Graduate School of Bioresource and Bioenvironmental Sciences,Kyushu University,Fukuoka 812-8581,Japan.
Abstract:
Recently, it has been found that the gut microbiota influences functions of the host brain by affecting monoamine metabolism. The present study focused on the relationship between the gut microbiota and the brain amino acids. Specific pathogen-free (SPF) and germ-free (GF) mice were used as experimental models. Plasma and brain regions were sampled from mice at 7 and 16 weeks of age, and analysed for free d- and l-amino acids, which are believed to affect many physiological functions. At 7 weeks of age, plasma concentrations of d-aspartic acid (d-Asp), l-alanine (l-Ala), l-glutamine (l-Gln) and taurine were higher in SPF mice than in GF mice, but no differences were found at 16 weeks of age. Similar patterns were observed for the concentrations of l-Asp in striatum, cerebral cortex and hippocampus, and l-arginine (l-Arg), l-Ala and l-valine (l-Val) in striatum. In addition, the concentrations of l-Asp, d-Ala, l-histidine, l-isoleucine (l-Ile), l-leucine (l-Leu), l-phenylalanine and l-Val were significantly higher in plasma of SPF mice when compared with those of GF mice. The concentrations of l-Arg, l-Gln, l-Ile and l-Leu were significantly higher in SPF than in GF mice, but those of d-Asp, d-serine and l-serine were higher in some brain regions of GF mice than in those of SPF mice. In conclusion, the concentration of amino acids in the host brain seems to be dependent on presence of the gut microbiota. Amino acid metabolism in the host brain may be modified by manipulating microbiota communities.
Insights
The gut microbiota significantly influences host brain amino acid levels. Germ-free mice show altered amino acid profiles, suggesting microbiota manipulation can modify brain amino acid metabolism.
Area of Science:
- Neuroscience
- Microbiology
- Biochemistry
Background:
- The gut microbiota impacts host brain function through monoamine metabolism.
- Understanding the gut-brain axis is crucial for neurological health.
Purpose of the Study:
- To investigate the relationship between gut microbiota and brain amino acid concentrations.
- To determine if the presence of gut microbiota affects host brain amino acid levels.
Main Methods:
- Comparison of specific pathogen-free (SPF) and germ-free (GF) mice.
- Analysis of free d- and l-amino acids in plasma and brain regions (striatum, cerebral cortex, hippocampus) at 7 and 16 weeks of age.
Main Results:
- SPF mice exhibited higher plasma concentrations of d-aspartic acid (d-Asp), l-alanine (l-Ala), l-glutamine (l-Gln), and taurine at 7 weeks compared to GF mice.
- Significant differences in various amino acids (l-Asp, d-Ala, l-histidine, l-isoleucine (l-Ile), l-leucine (l-Leu), l-phenylalanine, l-Val) were observed in plasma and brain regions between SPF and GF mice.
- Specific amino acids like d-Asp, d-serine, and l-serine were found in higher concentrations in certain brain regions of GF mice.
Conclusions:
- Host brain amino acid concentrations are demonstrably dependent on the presence of gut microbiota.
- Modulating gut microbiota communities offers a potential strategy for altering brain amino acid metabolism.
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