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Dyball, X.

Publications and source records attributed to Dyball, X..

2 recordsLinked to original sources

Defining the ESKAPE pathogen prophage repertoire with PHORAGER

Prophages are major drivers of bacterial evolution, mediating horizontal gene transfer and lysogenic conversion to alter host phenotypes. Nevertheless, identifying prophages within bacterial genomes remains challenging due to their heterogeneity and similarity to other mobile genetic elements. Here we present PHORAGER (Prophage Hunting, vOtu Retrieval, Annotation and Genomic ExploRation), a scalable Nextflow pipeline for the standardised identification and quality assessment of prophages from bacterial genomes. PHORAGER incorporates bacterial genome pre-processing, consolidation of predictions from multiple mining tools, annotation-based filtering to reduce false positives, and generation of ready-to-analyse summary tables. We validated PHORAGER using 30,824 publicly available ESKAPE pathogen genomes. PHORAGER recovered more high-quality prophages than individual mining tools alone, and through extensive quality assessments removed a substantial number of false-positive predictions. In total 23,132 putative prophages were identified, the majority belonging to the class Caudoviricetes, and exhibiting a high degree of host-specificity. Putative antimicrobial resistance genes were detected in 0.48% of prophages, whereas virulence factors were most abundant in S. aureus prophages. ESKAPE prophages also frequently encoded anti-phage defence systems. PHORAGER is freely available as open-source software and the ESKAPE prophage collection generated in this study provides a reusable resource for further investigations. GRAPHICAL ABTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=104 SRC="FIGDIR/small/742953v1_ufig1.gif" ALT="Figure 1"> View larger version (37K): org.highwire.dtl.DTLVardef@1ce582org.highwire.dtl.DTLVardef@11fc004org.highwire.dtl.DTLVardef@17765f5org.highwire.dtl.DTLVardef@1c6f0ff_HPS_FORMAT_FIGEXP M_FIG C_FIG

bioinformatics↗

Diverse Defence Systems and Prophages in Human-Associated Bifidobacterium Species Reveal "Arms Race" Dynamics

Bacteria of the genus Bifidobacterium are pivotal for human health, especially in early life, where they dominate the gut microbiome in healthy infants. Bacteriophages, viruses of bacteria, are drivers of gut bacterial composition in the human gut and could affect bifidobacterial abundance. Here, we use a bioinformatics approach to explore the direct interactions occurring between human-associated Bifidobacterium spp. and prophages, as evidenced by their genomes. A total of 1,086 bifidobacterial genomes were analysed in this study, revealing complex systems to prevent viral invasion. Despite their characteristically small genomes, Bifidobacterium strains harboured more than double the number of defence systems as most bacteria. In total, 34 defence system types and 56 subtypes were detected, including several different CRISPR-Cas systems with spacers that targeted almost three-quarters of bifidobacteria-derived prophages. We identified at least one prophage which met our stringent quality control measures in [~]63% of strains, with phages exhibiting high genomic diversity and evidence of historical recombination. Additionally, prophages were found to encode various anti-defence systems, such as anti-CRISPR genes and restriction modification resistance mechanisms. In summary, our investigation reveals "arms race" dynamics drive genomic diversity in both bifidobacteria and their phages. ImportanceMembers of the Bifidobacterium genus are widely acknowledged as being highly important for human health, particularly in infants. To date, there have been a limited number of large-scale studies that have investigated the presence of prophages and anti-viral defence systems of Bifidobacterium strains from multiple human-associated species. Here, we have uncovered a complex set of anti-phage strategies encoded by Bifidobacterium strains. In addition, we have also identified a highly diverse phage mobilome present within the genomes of bifidobacteria across the genus, which also encode several unique systems for overcoming bacterial defences. Elucidating these co-evolutionary dynamics between phages and bifidobacteria may provide valuable insight into developing high-throughput methods for identifying next-generation probiotic or live biotherapeutic candidates, which may then be applied for the prevention and treatment of various diseases in humans.

microbiology↗