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Non-Invasive Model of Neuropathogenic Escherichia coli Infection in the Neonatal Rat
Published on: October 29, 2014
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.
Abstract:
In the weeks after birth, the gut acquires a nascent microbiome, and starts its transition to bacterial population equilibrium. This early-in-life microbial population quite likely influences later-in-life host biology. However, we know little about the governance of community development: does the gut serve as a passive incubator where the first organisms randomly encountered gain entry and predominate, or is there an orderly progression of members joining the community of bacteria? We used fine interval enumeration of microbes in stools from multiple subjects to answer this question. We demonstrate via 16S rRNA gene pyrosequencing of 922 specimens from 58 subjects that the gut microbiota of premature infants residing in a tightly controlled microbial environment progresses through a choreographed succession of bacterial classes from Bacilli to Gammaproteobacteria to Clostridia, interrupted by abrupt population changes. As infants approach 33-36 wk postconceptional age (corresponding to the third to the twelfth weeks of life depending on gestational age at birth), the gut is well colonized by anaerobes. Antibiotics, vaginal vs. Caesarian birth, diet, and age of the infants when sampled influence the pace, but not the sequence, of progression. Our results suggest that in infants in a microbiologically constrained ecosphere of a neonatal intensive care unit, gut bacterial communities have an overall nonrandom assembly that is punctuated by microbial population abruptions. The possibility that the pace of this assembly depends more on host biology (chiefly gestational age at birth) than identifiable exogenous factors warrants further consideration.
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