Patterned progression of bacterial populations in the premature infant gut

Patricio S La Rosa1, Barbara B Warner2, Yanjiao Zhou3

  • 1Departments of Medicine and.

Insights

The infant gut microbiome develops in a predictable sequence, not randomly. Factors like antibiotics and birth method affect the speed, but not the order, of this bacterial community assembly.

Area of Science:

  • Microbiology
  • Neonatal Research
  • Host-Microbiome Interactions

Background:

  • The early-life gut microbiome is crucial for host biology.
  • Understanding the assembly process of infant gut bacteria is limited.
  • Key questions remain about random colonization versus ordered succession.

Purpose of the Study:

  • To investigate the assembly process of the infant gut microbiome.
  • To determine if gut bacterial communities develop randomly or in a structured sequence.
  • To identify factors influencing the pace and sequence of microbial colonization.

Main Methods:

  • 16S rRNA gene pyrosequencing of 922 stool specimens from 58 premature infants.
  • Fine interval enumeration of microbes.
  • Analysis of microbial community progression over time.

Main Results:

  • Infant gut microbiota follows a choreographed succession: Bacilli to Gammaproteobacteria to Clostridia.
  • Abrupt population changes punctuate the microbial progression.
  • Factors like antibiotics, birth mode, diet, and sampling age influence progression pace, not sequence.
  • Gut colonization by anaerobes is established by 33-36 weeks postconceptional age.

Conclusions:

  • Infant gut bacterial communities exhibit nonrandom assembly in controlled environments.
  • The sequence of microbial succession is largely conserved, despite variations in pace.
  • Host biology, particularly gestational age at birth, may be a more significant driver of assembly pace than exogenous factors.

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