Antibiotic resistance potential of the healthy preterm infant gut microbiome
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Published version
Author(s)
Type
Journal Article
Abstract
Background: Few studies have investigated the gut microbiome of infants, fewer still preterm infants. In this study we sought to quantify and interrogate the resistome within a cohort of premature infants using shotgun metagenomic sequencing. We describe the gut microbiomes from preterm but healthy infants, characterising the taxonomic diversity identified and frequency of antibiotic resistance genes detected.
Results: Dominant clinically important species identified within the microbiomes included C. perfringens, K. pneumoniae and members of the Staphylococci and Enterobacter genera. Screening at the gene level we identified an average 13 genes per preterm infant, ranging across 8 different antibiotic classes, including aminoglycosides and fluoroquinolones. Some antibiotic resistance genes were associated with clinically relevant bacteria, including the identification of mecA and high levels of Staphylococci within some infants. We were able to demonstrate that in a third of the infants the S. aureus identified was unrelated using MLST or metagenome assembly, but low abundance prevented such analysis within the remaining samples.
Conclusions: We found that the healthy preterm infant gut microbiomes in this study harboured a significant diversity of antibiotic resistance genes. This broad picture of resistances and the wider taxonomic diversity identified raises further caution to the use of antibiotics without consideration of the resident microbial communities.
Results: Dominant clinically important species identified within the microbiomes included C. perfringens, K. pneumoniae and members of the Staphylococci and Enterobacter genera. Screening at the gene level we identified an average 13 genes per preterm infant, ranging across 8 different antibiotic classes, including aminoglycosides and fluoroquinolones. Some antibiotic resistance genes were associated with clinically relevant bacteria, including the identification of mecA and high levels of Staphylococci within some infants. We were able to demonstrate that in a third of the infants the S. aureus identified was unrelated using MLST or metagenome assembly, but low abundance prevented such analysis within the remaining samples.
Conclusions: We found that the healthy preterm infant gut microbiomes in this study harboured a significant diversity of antibiotic resistance genes. This broad picture of resistances and the wider taxonomic diversity identified raises further caution to the use of antibiotics without consideration of the resident microbial communities.
Date Issued
2017-01-25
Date Acceptance
2016-12-20
Citation
PeerJ, 2017, 5
ISSN
2167-8359
Publisher
PeerJ
Journal / Book Title
PeerJ
Volume
5
Copyright Statement
© 2017 Rose et al. This is an open access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, reproduction and adaptation in any medium and for any purpose provided that it is properly attributed. For attribution, the original author(s), title, publication source (PeerJ) and either DOI or URL of the article must be cited.
Sponsor
Winnicott Foundation
National Institute for Health Research
Imperial College Healthcare NHS Trust - CLRN Funding
Grant Number
N/A
RDD02
RDD05
Subjects
Science & Technology
Multidisciplinary Sciences
Science & Technology - Other Topics
Preterm infants
Shotgun metagenomics
Antibiotic resistance
Gut microbiome
INTESTINAL MICROBIOTA
AMPICILLIN RESISTANCE
BACTERIAL DIVERSITY
GENE-TRANSFER
RESISTOME
STRAINS
GENOMES
LIFE
Publication Status
Published
Article Number
e2928