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.

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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