Early-life microbial colonization and antimicrobial resistance gene (ARG) acquisition may influence long-term health outcomes. High-resolution genomic studies assessing strain-level concordance and resistome overlap across maternal–infant interfaces during the immediate postnatal period remain limited. We analyzed 32 healthy mother–newborn dyads in Lebanon (91 samples), including maternal colostrum and breast milk and neonatal meconium and stool. Culture-based isolation, antimicrobial susceptibility testing, shotgun metagenomics, and whole-genome sequencing were used to characterize microbial composition, resistome profiles, and strain-level relatedness. Viable bacteria were recovered from 80% of meconium samples, with Escherichia coli and Enterococcus faecalis among the most frequent isolates. Whole-genome sequencing identified highly similar strains (≥99.9% average nucleotide identity) of E. coli , Klebsiella pneumoniae , and K. oxytoca across maternal and neonatal samples in six dyads. Metagenomic profiling demonstrated early acquisition of multidrug resistance genes, including bla CTX-M-15 , tet(M), and oqxA/B, alongside mobile genetic elements such as IncF and Col-type plasmids. The colistin resistance gene mcr-10 was detected in one neonatal stool sample. These findings demonstrate early-life resistome establishment and strain-level genomic concordance across maternal-infant compartments within the first week of life. While low-biomass samples require cautious interpretation, the observed genomic similarities and shared ARGs are consistent with potential maternal or shared environmental contributions to neonatal microbial and resistance gene acquisition, although the direction of transfer cannot be definitively established. This work underscores the importance of integrating genomic surveillance of maternal and neonatal resistomes in perinatal health research. This study provides high-resolution genomic insight into early-life microbial colonization and antimicrobial resistance gene acquisition by integrating culture-based microbiology, shotgun metagenomics, and whole-genome sequencing across matched maternal (colostrum, breast milk) and neonatal (meconium, stool) samples. The identification of viable bacteria and clinically relevant resistance determinants within the first week of life, including instances of strain-level genomic concordance between maternal and neonatal samples, contributes to understanding the early establishment of the neonatal resistome. While low-biomass samples require cautious interpretation, the observed genomic similarities and shared mobile genetic elements suggest potential maternal or shared environmental influences on early colonization dynamics. These findings highlight the value of considering maternal reservoirs in studies of neonatal microbial and resistance gene evolution and underscore the need for genomic surveillance of early-life resistome development in perinatal settings. • Strain-resolved genomics reveals maternal–infant bacterial sharing. • ≥99.9% ANI confirms transmission of E. coli and Klebsiella strains. • Early neonatal resistome includes ESBL and mcr-10.1 genes. • IncF and Col plasmids detected across maternal-infant compartments. • Strain persistence and replacement observed within first weeks.
Mardirossian et al. (Fri,) studied this question.
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