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Mencia-Ares, O.

Publications and source records attributed to Mencia-Ares, O..

3 recordsLinked to original sources

Paired viromics resolves the modular ecological architecture of the swine nasopharyngeal phageome

BackgroundBacteriophages are recognized modulators of microbiome composition and function, yet their role in the porcine upper respiratory tract, a primary gateway for pathogen colonization in the post-weaning period, remains unexplored. Unlike the porcine gut, no reference framework is available for respiratory sites. Furthermore, the low-biomass nature of nasopharyngeal specimens makes virome recovery highly sensitive to extraction strategy, but the extent to which workflow choice shapes ecological inference in this niche has not been evaluated. ResultsWe profiled the nasopharyngeal phageome of post-weaning piglets across ten commercial farms (30 pen-level pools) using paired DNA-microbiome (DNA-m) and virus-like particle-enriched (VLP-e) short-read metagenomics (n = 60 libraries). Protocol choice strongly reshaped viral recovery (PERMANOVA R{superscript 2} = 0.448, p < 0.0001), with a contig overlap between workflows of <1%. DNA-m favored assembly contiguity, while VLP-e maximized viral detection. By integrating both approaches, we constructed a curated catalogue of 2,501 non-redundant viral operational taxonomic units (vOTUs), with only 5.2% showing similarity to known phages, underscoring the extensive novelty of this niche. Ecologically, within the integrated community dataset (n = 4,357), predicted replication strategy emerged as a dominant organizing axis: lifestyle explained up to 40.6% of compositional variation at family level. Host prediction linked phages to dominant upper-airway colonizers, including Streptococcaceae, Moraxellaceae, Pasteurellaceae, with a marked lifestyle-host polarization: virulent phages were preferentially linked to Bacteroidota (particularly Prevotella), whereas temperate phages were enriched in Streptococcaceae and Moraxellaceae. Integration of viral taxonomy and host affiliation resolved a modular architecture in which a few recurrent phage-host couplings (e.g., Suoliviridae-Bacteroidota, Peduoviridae-Pasteurellaceae, Aliceevansviridae-Streptococcaceae) were conserved but differentially weighted between virulent and temperate fractions. ConclusionsThis study establishes the first phageome catalogue and ecological framework for a respiratory site in livestock. The nasopharyngeal phageome is organized into recurrent, host-linked taxonomic modules jointly constrained by viral lineage, host affiliation and replication strategy, with lifestyle-dependent connections to key colonizers implicated in the porcine respiratory disease complex. This catalogue and its modular architecture provide a foundation for investigating phage-mediated modulation of bacterial dynamics during the post-weaning transition and for the selection of lytic phage candidates targeting respiratory pathogens.

microbiology↗

Biofilm formation in Streptococcus suis: In vitro impact of serovar and assessment of coinfections with other porcine respiratory disease complex bacterial pathogens.

Streptococcus suis is a worldwide pathogen that impacts swine industry, causing severe clinical signs in postweaning piglets, including meningitis and arthritis. Biofilm formation is a major virulence mechanism in S. suis, enhancing its persistence and resistance. Here, we assessed the in vitro biofilm formation of 240 S. suis isolates from Spanish swine farms and evaluated the effects of serovars (SVs) and coinfections with other porcine respiratory disease complex (PRDC) pathogens. Our study revealed significant heterogeneity in biofilm formation among S. suis SVs. Notably, SV2 exhibited the lowest biofilm formation, contrasting with the high biofilm-forming capacities of SV1, SV7, and SV9. Virulence factors epf, mrp, and sly were associated (p < 0.05) with reduced biofilm formation. Other PRDC pathogens, including Actinobacillus pleuropneumoniae, Glaesserella parasuis, and Pasteurella multocida, formed biofilms, though generally less robust than those of S. suis (except for SV2), contrasting the high biofilm formation of Staphylococcus hyicus. Coinfections demonstrated enhanced biofilm formation in mixed cultures of S. suis, particularly with P. multocida. Other coinfections revealed variable results in pathogen interactions, suggesting the potential of biofilms for increased persistence and pathogenicity in coinfections. In conclusion, this study underscores the importance of serovar-specific differences in biofilm formation among S. suis isolates, with significant implications for pathogenicity and persistence. The heterogeneous biofilm formation observed in coinfections with other PRDC pathogens reveals a complex interplay that could exacerbate disease severity. These findings provide a foundation for further research on biofilm mechanisms to mitigate the impact of PRDC in the swine industry.

microbiology↗

TbpB-based oral mucosal vaccine provides heterologous protection against Glasser disease caused by different serovars of Spanish field isolates of Glaesserella parasuis

BackgroundGlaesserella parasuis has a substantial impact on the pig production as the primary agent of Glassers disease, particularly affecting nursery and early fattening stages. Current prophylactic measures, mainly based in serovar-specific bacterins administered parenterally to sows, face limitations due to maternal immunity, which may interfere with the active immunization of piglets. The mucosal administration of TbpB-based subunit vaccines offers a promising approach to overcome these limitations for the control of the disease in weaning piglets. This study evaluates the immunogenicity and heterologous protection of the oral mucosal TbpBY167A subunit vaccine in colostrum-deprived piglets challenged with four G. parasuis clinical isolates belonging to different TbpB clusters and serovars (SVs) recovered from Spanish pig farms. ResultsThe mucosal administration of a two-dose TbpB-based vaccine induced a robust humoral immune response in immunized colostrum-deprived piglets, significantly increasing IgA (p < 0.01) and IgM (p < 0.01) concentration 15 days after the second dose. Subsequent infection challenge with four G. parasuis clinical isolates demonstrated heterologous protection, markedly improving survival rates (OR: 8.45; CI 95%: 4.97-14.36) and significantly reducing clinical signs and lesions, regardless of the G. parasuis TbpB cluster and serovar. The vaccine not only reduced G. parasuis colonization in the respiratory tract of immunized piglets (p < 0.0001), but also in systemic target tissues, such as the tarsus and carpus joints, liver, and brain (p < 0.05). Further immunohistochemical analysis in different lung locations revealed a significantly lower macrophage count in immunized piglets (p < 0.0001). ConclusionsOverall, this study demonstrates that the oral mucosal administration of the TbpBY167A subunits vaccine in piglets provides effective heterologous protection against different virulent European G. parasuis field isolates, significantly reducing bacterial colonization and dissemination. These facts position this TbpB-based vaccine as a leading candidate for a universal vaccine against Glassers disease.

immunology↗