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Updated: Jan 31, 2026

A Gut-on-a-Chip Model to Study the Gut Microbiome-Nervous System Axis
Published on: July 28, 2023
Gut microbiome and brain functional connectivity in infants-a preliminary study focusing on the amygdala
Wei Gao1,2, Andrew P Salzwedel3, Alexander L Carlson4
1Department of Biomedical Sciences and Imaging, Biomedical Imaging Research Institute, Cedars-Sinai Medical Center, PACT Room 400.7S, 116 N Robertson Blvd, Los Angeles, CA, 90048, USA. wei.gao@cshs.org.
Insights
Infant gut microbiome diversity is linked to brain connectivity, potentially influencing cognitive development through the microbiome-gut-brain axis. This early life connection may impact later mental health trajectories.
Area of Science:
- Neuroscience
- Microbiology
- Developmental Psychology
Background:
- The microbiome-gut-brain axis is a growing area of interest, particularly during infancy, a critical period for brain and microbiome development.
- Existing research suggests infant gut microbiome composition correlates with temperament and cognitive function.
- Neural mechanisms underlying these associations remain largely unexplored.
Purpose of the Study:
- To investigate the relationship between infant gut microbiome diversity and brain functional connectivity.
- To identify specific brain circuits involved in the microbiome-gut-brain axis during early development.
- To explore potential links between gut microbiome, brain connectivity, and later cognitive outcomes.
Main Methods:
- Resting-state functional magnetic resonance imaging (fMRI) was used to assess brain connectivity in 39 1-year-old infants.
- Fecal samples were analyzed to quantify bacterial taxa and calculate alpha diversity.
- Associations between alpha diversity and functional connectivity were examined, focusing on the amygdala and canonical resting-state networks.
Main Results:
- Gut microbiome alpha diversity was significantly associated with functional connectivity between the amygdala and thalamus.
- Alpha diversity also correlated with connectivity between the anterior cingulate cortex and anterior insula, regions involved in threat processing.
- Connectivity between the supplementary motor area and inferior parietal lobule, associated with alpha diversity, predicted cognitive outcomes at 2 years of age.
Conclusions:
- This study reveals significant associations between infant gut microbiome diversity and brain functional connectivity.
- Findings suggest a potential pathway from gut microbiome diversity to cognitive development via neural circuitry.
- These insights into the early-life microbiome-gut-brain axis warrant further investigation into its role in psychopathology risk.
Abstract:
Recently, there has been a surge of interest in the possibility that microbial communities inhabiting the human gut could affect cognitive development and increase risk for mental illness via the "microbiome-gut-brain axis." Infancy likely represents a critical period for the establishment of these relationships, as it is the most dynamic stage of postnatal brain development and a key period in the maturation of the microbiome. Indeed, recent reports indicate that characteristics of the infant gut microbiome are associated with both temperament and cognitive performance. The neural circuits underlying these relationships have not yet been delineated. To address this gap, resting-state fMRI scans were acquired from 39 1-year-old human infants who had provided fecal samples for identification and relative quantification of bacterial taxa. Measures of alpha diversity were generated and tested for associations with measures of functional connectivity. Primary analyses focused on the amygdala as manipulation of the gut microbiota in animal models alters the structure and neurochemistry of this brain region. Secondary analyses explored functional connectivity of nine canonical resting-state functional networks. Alpha diversity was significantly associated with functional connectivity between the amygdala and thalamus and between the anterior cingulate cortex and anterior insula. These regions play an important role in processing/responding to threat. Alpha diversity was also associated with functional connectivity between the supplementary motor area (SMA, representing the sensorimotor network) and the inferior parietal lobule (IPL). Importantly, SMA-IPL connectivity also related to cognitive outcomes at 2 years of age, suggesting a potential pathway linking gut microbiome diversity and cognitive outcomes during infancy. These results provide exciting new insights into the gut-brain axis during early human development and should stimulate further studies into whether microbiome-associated changes in brain circuitry influence later risk for psychopathology.
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