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A Gut-on-a-Chip Model to Study the Gut Microbiome-Nervous System Axis
Published on: July 28, 2023
Early Life Experience and Gut Microbiome: The Brain-Gut-Microbiota Signaling System
Xiaomei Cong1, Wendy A Henderson, Joerg Graf
1School of Nursing, University of Connecticut, Storrs (Dr Cong); Digestive Disorder Unit, Biobehavioral Branch, NINR, NIH, Bethesda, MD (Dr Henderson); Department of Molecular and Cell Biology, University of Connecticut, Storrs (Dr Graf); and School of Nursing, University of Connecticut, Connecticut Children's Medical Center, Storrs (Dr McGrath).
Insights
The brain-gut-microbiota axis is crucial for infant development, influencing stress and pain responses. Understanding this connection is key for improving care for high-risk infants.
Area of Science:
- Neonatal neurodevelopment
- Neuroimmunology
- Microbiome research
Background:
- Neonatal care advances increase preterm infant survival.
- Concerns rise regarding neurodevelopmental morbidity linked to early life stress and immature neuroimmune systems.
- The brain-gut signaling system, involving the gut microbiome, impacts stress, health, and central nervous system programming.
Purpose of the Study:
- Review evidence on the brain-gut-microbiota axis in early life.
- Examine the gut microbiome's role in modulating stress and pain in high-risk infants.
- Present a conceptual framework for understanding early life experience regulation.
Main Methods:
- State-of-the-science literature review.
- Analysis of existing evidence on brain-gut-microbiota interactions.
- Development of a conceptual framework.
Main Results:
- The brain-gut-microbiota axis significantly influences early life experiences.
- Gut microbiome composition and function are critical for neurodevelopment and immune regulation.
- Evidence supports the microbiome's role in modulating infant stress and pain responses.
Conclusions:
- The field is emerging, with ongoing discoveries.
- Understanding these relationships is vital for future practice.
- Potential for targeted interventions to improve infant outcomes.
Background:
Over the past decades, advances in neonatal care have led to substantial increases in survival among preterm infants. With these gains, recent concerns have focused on increases in neurodevelopment morbidity related to the interplay between stressful early life experiences and the immature neuroimmune systems. This interplay between these complex mechanisms is often described as the brain-gut signaling system. The role of the gut microbiome and the brain-gut signaling system have been found to be remarkably related to both short- and long-term stress and health. Recent evidence supports that microbial species, ligands, and/or products within the developing intestine play a key role in early programming of the central nervous system and regulation of the intestinal innate immunity.
Purpose:
The purpose of this state-of-the-science review is to explore the supporting evidence demonstrating the importance of the brain-gut-microbiota axis in regulation of early life experience. We also discuss the role of gut microbiome in modulating stress and pain responses in high-risk infants. A conceptual framework has been developed to illustrate the regulation mechanisms involved in early life experience.
Conclusions:
The science in this area is just beginning to be uncovered; having a fundamental understanding of these relationships will be important as new discoveries continue to change our thinking, leading potentially to changes in practice and targeted interventions.
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