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Updated: Oct 3, 2025

Quantitative Polymerase Chain Reaction-based Analyses of Murine Intestinal Microbiota After Oral Antibiotic Treatment
Published on: November 17, 2018
Effects of early-life antibiotics on the developing infant gut microbiome and resistome: a randomized trial
Marta Reyman1,2, Marlies A van Houten2, Rebecca L Watson3
1Department of Pediatric Immunology and Infectious Diseases, Wilhelmina Children's Hospital and University Medical Center Utrecht, Utrecht, the Netherlands.
Insights
Early-life antibiotics for neonatal sepsis significantly alter infant gut microbes and resistance genes. The choice of antibiotic impacts these changes, with amoxicillin + cefotaxime showing the most significant effects.
Area of Science:
- Microbiology
- Neonatal Medicine
- Genetics
Background:
- Broad-spectrum antibiotics are crucial for suspected early-onset neonatal sepsis (sEONS).
- Antibiotic administration in the first week of life impacts the developing neonatal gut microbiome and antimicrobial resistance (AMR).
Purpose of the Study:
- To investigate the effects of three common intravenous antibiotic combinations on gut microbiota composition and AMR gene profiles in infants treated for sEONS.
- To compare the ecological side-effects of different antibiotic regimens.
Main Methods:
- Randomized controlled trial (ZEBRA study) of 147 infants receiving penicillin + gentamicin, co-amoxiclav + gentamicin, or amoxicillin + cefotaxime for sEONS.
- Comparison with 80 healthy, non-antibiotic treated infants (MUIS study).
- 16S rRNA sequencing, targeted qPCR for 31 AMR genes, and shotgun metagenomics on rectal swabs/faeces collected longitudinally.
Main Results:
- Antibiotic treatment caused significant shifts in gut microbial community composition and AMR gene profiles immediately post-treatment.
- Microbiome and AMR profiles largely normalized within 12 months.
- Antibiotic-treated infants showed decreased Bifidobacterium spp. and increased Klebsiella and Enterococcus spp. compared to controls.
- Amoxicillin + cefotaxime had the largest impact, while penicillin + gentamicin had the least.
Conclusions:
- Empirical antibiotic choice for sEONS significantly influences neonatal gut microbiome development and AMR gene selection.
- Amoxicillin + cefotaxime demonstrated the most pronounced adverse ecological effects.
- Penicillin + gentamicin appeared to have the least impact on the neonatal gut microbiome and AMR profile.
Abstract:
Broad-spectrum antibiotics for suspected early-onset neonatal sepsis (sEONS) may have pronounced effects on gut microbiome development and selection of antimicrobial resistance when administered in the first week of life, during the assembly phase of the neonatal microbiome. Here, 147 infants born at ≥36 weeks of gestational age, requiring broad-spectrum antibiotics for treatment of sEONS in their first week of life were randomized 1:1:1 to receive three commonly prescribed intravenous antibiotic combinations, namely penicillin + gentamicin, co-amoxiclav + gentamicin or amoxicillin + cefotaxime (ZEBRA study, Trial Register NL4882). Average antibiotic treatment duration was 48 hours. A subset of 80 non-antibiotic treated infants from a healthy birth cohort served as controls (MUIS study, Trial Register NL3821). Rectal swabs and/or faeces were collected before and immediately after treatment, and at 1, 4 and 12 months of life. Microbiota were characterized by 16S rRNA-based sequencing and a panel of 31 antimicrobial resistance genes was tested using targeted qPCR. Confirmatory shotgun metagenomic sequencing was executed on a subset of samples. The overall gut microbial community composition and antimicrobial resistance gene profile majorly shift directly following treatment (R2 = 9.5%, adjusted p-value = 0.001 and R2 = 7.5%, adjusted p-value = 0.001, respectively) and normalize over 12 months (R2 = 1.1%, adjusted p-value = 0.03 and R2 = 0.6%, adjusted p-value = 0.23, respectively). We find a decreased abundance of Bifidobacterium spp. and increased abundance of Klebsiella and Enterococcus spp. in the antibiotic treated infants compared to controls. Amoxicillin + cefotaxime shows the largest effects on both microbial community composition and antimicrobial resistance gene profile, whereas penicillin + gentamicin exhibits the least effects. These data suggest that the choice of empirical antibiotics is relevant for adverse ecological side-effects.
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