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Associations between maternal obesity and offspring gut microbiome in the first year of life
Stephanie P Gilley1, Meghan L Ruebel1, Clark Sims2,3
1Department of Pediatrics, Section of Nutrition, University of Colorado School of Medicine, Aurora, Colorado, USA.
Insights
Maternal obesity alters the infant microbiome, reducing beneficial bacteria and butyric acid. Infant microbial diversity may predict future adiposity, highlighting the microbiome’s role in offspring obesity risk.
Area of Science:
- Microbiome research
- Pediatric health
- Metabolic disease
Background:
- Maternal obesity is a significant risk factor for offspring obesity.
- The infant microbiome may mediate the link between maternal obesity and offspring adiposity.
Purpose of the Study:
- To investigate infant fecal microbiome, short-chain fatty acids (SCFA), and maternal human milk oligosaccharides (HMO) in relation to maternal body mass index (BMI).
Main Methods:
- 16S rRNA sequencing of infant stool samples at 1, 6, and 12 months.
- Measurement of maternal and infant adiposity using BODPOD and quantitative nuclear magnetic resonance (QMR).
- Assessment of maternal HMOs and infant fecal SCFAs, with statistical modeling for microbiome-composition-adiposity associations.
Main Results:
- Infants of obese mothers showed lower SCFA-producing bacteria and butyric acid at 1 month.
- Lower Lachnospiraceae abundance in overweight/obese (OW) group at 6 months; infant fat mass negatively associated with Sutterella.
- Microbial diversity and specific taxa at 1 month predicted 76.5% accuracy for 12-month adiposity; maternal HMO-infant taxa associations differed by maternal BMI group.
Conclusions:
- Elevated maternal BMI is linked to reduced butyrate-producing microbes and fecal butyrate in early infancy.
- Infant microbiome richness may predict later adiposity, underscoring its role in offspring obesity development.
Background:
Maternal obesity is an important determinant of offspring obesity risk, which may be mediated via changes in the infant microbiome.
Objectives:
We examined infant faecal microbiome, short-chain fatty acids (SCFA), and maternal human milk oligosaccharides (HMO) in mothers with overweight/obese body mass index (BMI) (OW) compared with normal weight (NW) (Clinicaltrials.gov NCT01131117).
Methods:
Infant stool samples at 1, 6, and 12 months were analysed by 16S rRNA sequencing. Maternal (BODPOD) and infant (quantitative nuclear magnetic resonance [QMR]) adiposity were measured. HMOs at 2 months postpartum and faecal SCFAs at 1 month were also assessed. Statistical analyses included multivariable and mixed linear models for assessment of microbiome diversity, composition, and associations of taxonomic abundance with metabolic and anthropometric variables.
Results:
At 1 month, offspring of women with obesity had lower abundance of SCFA-producing bacteria (including Ruminococcus and Turicibacter) and lower faecal butyric acid levels. Lachnospiraceae abundance was lower in OW group at 6 months, and infant fat mass was negatively associated with the levels of Sutterella. Gradient boosting machine models indicated that higher α-diversity and specific microbial taxa at 1 month predicted elevated adiposity at 12 months with overall accuracy of 76.5%. Associations between maternal HMO concentrations and infant bacterial taxa differed between NW and OW groups.
Conclusions:
Elevated maternal BMI is associated with relative depletion of butyrate-producing microbes and faecal butyrate in the early infant faecal microbiome. Overall microbial richness may aid in prediction of elevated adiposity in later infancy.
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