Human gut colonisation may be initiated in utero by distinct microbial communities in the placenta and amniotic fluid

Maria Carmen Collado1,2, Samuli Rautava3, Juhani Aakko1,4

  • 1Functional Foods Forum, University of Turku, Itäinen Pitkäkatu 4A, 20520, Turku, Finland.

Scientific Reports
|March 23, 2016
PubMed

Insights

The infant gut microbiome

Area of Science:

  • Microbiology
  • Immunology
  • Gastroenterology

Background:

  • Early-life microbial exposure programs immune and metabolic pathways, impacting long-term health.
  • Understanding prenatal and neonatal microbial transfer is crucial for infant gut colonization.

Purpose of the Study:

  • To investigate prenatal and neonatal microbial transfer and gut colonization in mother-infant pairs.
  • To characterize the distinct microbiota in the placenta and amniotic fluid.

Main Methods:

  • Analysis of maternal and infant samples (feces, placenta, amniotic fluid, colostrum, meconium).
  • Utilized bacterial culture, 16S rRNA gene pyrosequencing, quantitative PCR, and DGGE for microbiota assessment.
  • Focused on full-term, elective cesarean section deliveries for sterile sampling.

Main Results:

  • The placenta and amniotic fluid harbor a distinct microbiota (low richness, low diversity, Proteobacteria predominant).
  • Shared microbial features between placental/amniotic fluid and infant meconium suggest prenatal transfer.
  • Infant gut microbiota at 3-4 days resembles colostrum microbiota.

Conclusions:

  • Prenatal microbial colonization may be initiated by distinct placental and amniotic fluid microbiota.
  • Postnatal gut colonization is influenced by breast milk microbes.
  • This stepwise colonization impacts infant health and development.

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