Meconium Microbiome of Very Preterm Infants across Germany

Jonas Klopp1, Pamela Ferretti2, Claudius U Meyer1

  • 1University Medical Center of the Johannes Gutenberg University Mainz, Mainz, Germany.

Msphere
|January 12, 2022
PubMed

Insights

The meconium microbiome in preterm infants is dominated by Bifidobacterium, Staphylococcus, and Enterococcus. A new scoring system, MecBac, helps predict successful bacterial sequencing for these challenging samples.

Area of Science:

  • Microbiology
  • Neonatal Health
  • Human Microbiome Studies

Background:

  • Meconium, the first infant stool, differs significantly from later infant and adult feces in consistency and microbial load.
  • While evidence suggests in utero sterility, rapid microbial colonization occurs postnatally, with the meconium microbiome linked to adverse health outcomes.
  • The composition of the meconium microbiome, particularly in preterm infants, remains under-characterized.

Purpose of the Study:

  • To characterize the meconium microbiome in very preterm infants and compare it with maternal fecal samples.
  • To identify factors influencing meconium microbiome composition and bacterial DNA load.
  • To develop a method for assessing the suitability of meconium samples for microbiome analysis.

Main Methods:

  • 16S rRNA gene sequencing was performed on meconium samples from 330 very preterm infants and fecal samples from 217 mothers.
  • Microbiome profiling included the use of negative and positive controls to ensure data quality.
  • A five-level scoring system, "MecBac," was developed to predict the success of bacterial sequencing.

Main Results:

  • The meconium microbiome was primarily composed of Bifidobacterium, Staphylococcus, and Enterococcus species, influenced by gestational age and sample collection timing.
  • Bifidobacterial abundance showed a negative correlation with potentially pathogenic genera.
  • Bacterial DNA concentration varied significantly, affected by time post-birth, and low bacterial loads led to amplification of human mitochondrial DNA, impacting sequencing success in about half the samples.

Conclusions:

  • This study provides a foundational characterization of the preterm infant meconium microbiome.
  • The findings highlight challenges in meconium microbiome analysis due to variable bacterial load and suggest the MecBac system can aid future study design.
  • Understanding the meconium microbiome is crucial for assessing infant health and designing targeted interventions.