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Updated: Mar 23, 2026

Co-culture of Living Microbiome with Microengineered Human Intestinal Villi in a Gut-on-a-Chip Microfluidic Device
Published on: August 30, 2016
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.
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.
Abstract:
Interaction with intestinal microbes in infancy has a profound impact on health and disease in later life through programming of immune and metabolic pathways. We collected maternal faeces, placenta, amniotic fluid, colostrum, meconium and infant faeces samples from 15 mother-infant pairs in an effort to rigorously investigate prenatal and neonatal microbial transfer and gut colonisation. To ensure sterile sampling, only deliveries at full term by elective caesarean section were studied. Microbiota composition and activity assessment by conventional bacterial culture, 16S rRNA gene pyrosequencing, quantitative PCR, and denaturing gradient gel electrophoresis revealed that the placenta and amniotic fluid harbour a distinct microbiota characterised by low richness, low diversity and the predominance of Proteobacteria. Shared features between the microbiota detected in the placenta and amniotic fluid and in infant meconium suggest microbial transfer at the foeto-maternal interface. At the age of 3-4 days, the infant gut microbiota composition begins to resemble that detected in colostrum. Based on these data, we propose that the stepwise microbial gut colonisation process may be initiated already prenatally by a distinct microbiota in the placenta and amniotic fluid. The link between the mother and the offspring is continued after birth by microbes present in breast milk.
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