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Updated: May 22, 2025

Assessment and Evaluation of the High Risk Neonate: The NICU Network Neurobehavioral Scale
Published on: August 25, 2014
Early-life gut microbiome is associated with behavioral disorders in the Rio birth cohort
Nathalia Ferrazzo Naspolini1,2, Ana Paula Natividade3, Carmen Ildes Froes Asmus4
1Oswaldo Cruz Foundation, National School of Public Health Sergio Arouca, Rio de Janeiro, Brazil. nfnaspolini@gmail.com.
Insights
The infant gut microbiome at birth is linked to neurobehavioral development. Specific bacteria in meconium (infant
Area of Science:
- Microbiology
- Neuroscience
- Developmental Pediatrics
Background:
- Early-life gut microbiome composition influences host development, including brain function.
- Founder bacteria in the infant gut initiate microbial succession impacting neurodevelopmental outcomes.
Purpose of the Study:
- To investigate the association between the meconium microbiome and neurobehavioral outcomes in infants.
- To identify specific microbial patterns in meconium related to developmental milestones.
Main Methods:
- Surveyed the 16S rRNA gene in meconium samples to profile the early gut microbiome.
- Assessed infant neurobehavior at six months using the Denver Developmental Screening Test II (DDST-II).
- Analyzed associations between microbial diversity and specific behavioral domains, adjusting for confounding factors.
Main Results:
- Personal-social domain neurobehavior showed significant differences in meconium bacterial beta diversity and reduced alpha diversity.
- Altered neurobehavior was linked to overrepresentation of specific bacterial families (Ruminococcaceae, Christensenellaceae) and genera.
- Predicted functional genes were less abundant in infants with altered neurobehavior.
Conclusions:
- The meconium microbiome is associated with early neurobehavioral outcomes, particularly in the personal-social domain.
- Specific bacterial taxa and predicted functions in the initial gut microbiome may influence infant development.
- Further research in diverse neonate populations is warranted to confirm these findings.
Abstract:
Emerging evidence has been linking changes in the early-life gut microbiome and neurodevelopmental outcomes. The founder bacteria that first colonize the infant's gut determine the microbial succession that signals host tissues and impact development including the brain. Here we investigated the association between the meconium microbiome and neurobehavior. To this end, we surveyed the 16S rRNA gene on meconium samples and assessed behavioral outcomes at six-months of age by the Denver Developmental Screening Test II (DDST-II). Among the four behavioral domains investigated, the personal-social domain was associated with significant differences in meconium bacterial beta diversity (unweighted UniFrac; R2 0.078, p = 0.021) and reduced alpha diversity (β = -2.290, 95% CI = -4.212; CI = -0.368), after adjustment for gestational antibiotics, preterm delivery, and delivery mode. Besides, this altered neurobehavior (failing to meet the milestone) was associated with overrepresented Ruminococcaceae, Christensenellaceae, and Eubacterium, Treponema, Senegalimassilia, Ruminiclostridium, Roseburia, Romboutsia, Prevotella, and Veillonella seminalis. Predicted functional genes showed reduced abundance in association with altered neurobehavior (all q < 0.15). Fine and gross motor skills presented no associations with the microbiome. This pilot study shows associations between the first gut microbiome and behavioral outcomes that deserve further studies in different neonate populations.
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