Alterations in human milk leptin and insulin are associated with early changes in the infant intestinal microbiome

Dominick J Lemas1, Bridget E Young2, Peter R Baker3

  • 1Sections of Neonatology.

Insights

Maternal obesity impacts infant gut bacteria, but human milk (HM) hormones like insulin and leptin show protective effects. These hormones promote beneficial microbial pathways, potentially improving gut barrier function and reducing inflammation in infants.

Area of Science:

  • Microbiome research
  • Pediatric nutrition
  • Maternal health

Background:

  • Maternal obesity is a significant risk factor for childhood obesity.
  • Human milk (HM) may play a role in mitigating this risk via the infant microbiome.
  • Early infant gut microbial development is crucial for long-term health.

Purpose of the Study:

  • To compare the early intestinal microbiota of infants born to obese versus normal-weight (NW) mothers.
  • To investigate the relationship between HM hormones (leptin, insulin) and the infant microbiome's taxonomic and functional characteristics.
  • To explore the impact of maternal prepregnancy BMI on infant gut microbial composition.

Main Methods:

  • Collected clinical data, infant stool, and HM samples from NW and obese mothers and their exclusively breastfed infants at 2 weeks postpartum.
  • Utilized 16S amplicon and whole-genome sequencing to analyze infant gastrointestinal microbes.
  • Measured HM insulin and leptin via ELISA and short-chain fatty acids (SCFAs) in stool samples.

Main Results:

  • Infants of obese mothers had higher HM insulin and leptin levels and reduced Gammaproteobacteria.
  • HM insulin positively correlated with microbial diversity and Gammaproteobacteria, but negatively with Lactobacillales.
  • HM leptin and insulin were linked to reduced bacterial proteases and pyruvate kinase, suggesting improved gut barrier function and less inflammation.

Conclusions:

  • Maternal obesity can negatively influence the early infant gut microbiome.
  • HM insulin and leptin are independently associated with beneficial microbial pathways.
  • These hormones may enhance intestinal barrier function and decrease intestinal inflammation in infants.
Abstract

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