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Harshegyi-Hand, T.

Publications and source records attributed to Harshegyi-Hand, T..

2 recordsLinked to original sources

Bacterial diversity and strain dynamics in the infant respiratory microbiome during the first year of life

BackgroundMicrobial colonisation of the human body begins immediately after birth, with each body site forming a distinct ecological niche. While early gut microbial dynamics and their links to paediatric health have been considerably studied, the bacterial colonisation of the early infant respiratory system remains poorly understood, particularly at the species and strain level. ResultsHere, we generated and analysed whole genome sequencing of 925 isolates from six dominant genera in nasopharyngeal samples from 58 healthy infants enrolled in the Childhood Asthma Study (CAS) in Western Australia, collected longitudinally from birth (2, 6, and 12 months old). Our results expanded genomic reference catalogues and uncovered substantial strain-level diversity in dominant infant airway taxa. Plate-sweep metagenomics identified four microbiome profile groups (MPGs) with age-dependent membership, confirming prior observations while enabling high-resolution species and strain analyses. Community maturation was characterised by a shift from early Staphylococcus aureus dominance to increased Moraxella catarrhalis dominance by 12 months of age, alongside marked temporal changes in prevalence and cohort-level strain diversity. ConclusionsThese findings resolve infant nasopharyngeal microbiota composition at the species and strain level, revealing taxon-specific colonisation patterns. By substantially expanding publicly available reference genomes for underrepresented airway taxa, this work also provides a foundation for functional follow-up studies of the early respiratory microbiota and respiratory outcomes.

microbiology↗

Stability and Processing Impacts on Faecal Microbiota Transplant Products: An Integrated Metagenomic-Culturomic Analysis

BackgroundFaecal microbiota transplantation (FMT) is an increasingly used microbiome-based therapy, whose clinical success depends on the stability and viability of the donor microbiota. Few studies have systematically evaluated these parameters for FMT preparations. Here, we integrate metagenomic sequencing with culturing-based recovery of viable microbes to comprehensively characterise FMT preparations from healthy Australian donors. ResultsMetagenomic profiling of bacterial communities from repeat FMT faecal donations revealed high temporal stability within individual donors, supporting donor suitability for consistent and standardised FMT production. The community structure and diversity of final FMT products remained largely consistent with their source material, reflecting limited disruption during processing. Culturing and sweep metagenomics showed bacterial species representing 98% of faecal microbiota abundance was recoverable, underscoring the potential of FMTs to deliver a viable and functionally active bacterial community to a recipient. When FMT donor microbiomes were compared to >7,000 healthy gut microbiomes from 27 countries, donor samples were distinct but clustered most closely with other Westernised populations, while also exhibiting significantly higher diversity than most global cohorts. These results highlight the geographic specificity of gut microbiomes and the need to consider population context in donor selection. ConclusionsThis study strengthens the evidence base for FMT product standardisation and viability, with implications for FMT clinical use, donor screening protocols, and associated regulatory frameworks.

microbiology↗