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Nagaraja, T. G.

Publications and source records attributed to Nagaraja, T. G..

2 recordsLinked to original sources

Unexpected finding of Fusobacterium varium abundance in cattle rumen: implications for liver abscess interventions

Fusobacterium varium has been generally overlooked in cattle rumen microbiome studies relative to the presumably more abundant, liver abscess-causing Fusobacterium necrophorum. Here, we revisit that conventional wisdom and report greater relative abundance of F. varium than F. necrophorum in both raw rumen samples and in lactate-supplemented enrichments tailored for F. necrophorum growth, despite its consistent inadvertence in past ruminal surveys and putative inability to metabolize lactate. Our observation that F. varium grows under restrictive conditions used to enumerate F. necrophorum suggests that previous estimations were inaccurate and F. varium is an underestimated player within the ruminal community. Exposure to tylosin, the current gold standard among prophylactic liver abscess prevention strategies in cattle, consistently reduced growth of all F. necrophorum strains screened by greater than 67% relative to unexposed controls. In contrast, F. varium strains were completely or highly resistant (0 - 11% reduction in maximum yield). Monensin, an ionophore fed to cattle to improve feed efficiency also had stronger inhibitory activity against F. necrophorum than against F. varium. Finally, preliminary genomic analysis of two F. varium bovine isolates revealed the presence of virulence genes related to those of pathogenic F. varium human isolates associated with active invasion of mammalian cells. ImportanceJudicious antibiotic use is essential to mitigate the spread of antimicrobial resistance. Dogmatic prophylactic use of in-feed tylosin to control cattle liver abscesses hinges on the assumption that F. necrophorum in the rumen is the main etiologic agent. However, our unexpected finding of abundance of F. varium in the rumen and its resistance to antibiotics, in hand with the potential pathogenicity of this species, calls for increased attention to F. varium. Further investigation into F. varium is necessary to better understand bovine liver abscess development and devise higher-precision alternatives to antibiotic treatment.

microbiology↗

High proportions of single-nucleotide variations associated with multidrug resistance in swine gut microbial populations

BackgroundAntimicrobial resistance (AMR) is a significant global public health concern associated with millions of deaths annually. Agriculture has been attributed as a leading factor in AMR and multidrug resistance (MDR) associated with swine production estimated as one of the largest agricultural consumers of antibiotics. Therefore, studying and understanding AMR in swine has global relevance. AMR research has received increased attention in recent years. However, we are still building our understanding of genetic variation within a complex gut microbiome system that impacts AMR and MDR. In order to evaluate the gut resistome, we evaluated genetic variation before, during, and after antibiotic treatments. We studied three treatment groups: non-antibiotic controls (C), chlortetracycline (CTC) treated, and tiamulin (TMU) treated. We collected fecal samples from each group and performed metagenomic sequencing for a longitudinal analysis of genetic variation and functions. ResultsWe generated 772,688,506 reads and 81 metagenome assembled genomes (MAGs). Interestingly, we identified a subset of 11 MAGs with sustained detection and high sustained entropy (SDHSE). Entropy described genetic variation throughout the MAG. Our SDHSE MAGs were considered MDR as they were identified prior to, throughout, and after CTC and TMU treatments as well as in the C piglets. SDHSE MAGs were especially concerning as they harbored relatively high variation. Consistently high variation indicated that these microbial populations may contain hypermutable elements which has been associated with increased chance of AMR and MDR acquisition. Our SDHSE MAGs demonstrated that MDR organisms (MDRO) are present in swine, and likely additional hosts contributing to global AMR. Altogether, our study provides comprehensive genetic support of MDR populations within the gut microbiome of swine.

microbiology↗