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Magossi, G.

Publications and source records attributed to Magossi, G..

2 recordsLinked to original sources

Optimizing bacteriophage screening and isolation methods for microbial samples derived from different body sites of cattle

Bacteriophages are gaining increased research attention as alternatives to antibiotics and microbiome manipulation tools to enhance feed efficiency and animal health in cattle. However, challenges associated with phage specificity, microbial ecosystem variations, and the absence of effective screening methods have hindered harnessing the power of phage application in cattle. The objectives of this study were to (i) optimize phage screening method for microbial samples obtained from different cattle body sites, (ii) isolate lytic phages against key bovine pathogens and commensal bacteria, and (iii) characterize the isolated phages and their bacterial hosts. A total of 1,214 samples from different cattle body sites (n = 1194) and environmental sources were screened using 13 phage detection methods, including one high-throughput approach. Eighty-three phages were isolated, primarily from ruminal fluid (59), feces (15), vaginal (7) and nasopharyngeal swabs (1), and fetal ruminal fluid (1). The bacterial hosts inhibited by these phages were from 29 genera, with Bacillus (34), Escherichia/Shigella (8), Shouchella (5), Corynebacterium (4), and Lysinibacillus (4) being the most common. No phages were identified against bovine pathogens including Trueperella pyogenes, Mannheimia haemolytica, Pasteurella multocida, or Moraxella bovis. Method 12 demonstrated the highest efficiency in phage recovery, particularly from ruminal samples. The isolation of phages against commensal bacteria from the gastrointestinal, reproductive, and respiratory tracts, and fetal gut highlights their potential for microbiome modulation to improve cattle health and feed efficiency. These findings underscore the need for further research into pathogen-targeting phage isolation in cattle. ImportanceBacteriophage application holds a promising potential for improving feed efficiency and reducing enteric methane emissions and fighting against antimicrobial resistant bacterial pathogens in cattle. In the present study, we optimized a bacteriophage screening and isolation method that could be used to isolate bacteriophages against commensal bacteria from the ruminal, respiratory and reproductive tract microbiota in cattle. We isolated 83 phages that are lytic to bacterial species originating from rumen, vagina, nasopharynx of healthy adult cattle, as well as the intestinal tract of 6-month-old calf fetus. Overall, our study provides an important basis for the development of bacteriophage-based interventions to modulate ruminal, reproductive and respiratory tract microbiomes and thereby improve animal health and feed efficiency while reducing methane emissions in cattle.

microbiology↗

Genomic and metabolic characterization of Trueperella pyogenes isolated from domestic and wild animals

Trueperella pyogenes is an important bacterial pathogen implicated in infections such as mastitis, metritis, pneumonia, and liver abscesses in both domestic and wild animals as well as endocarditis and prosthetic joint infections in humans. Understanding the genomic and metabolic features that enable T. pyogenes to colonize different anatomical sites within a host and its inter-kingdom transmission and survival is important for the effective control of this pathogen. We employed whole genome sequencing, phenotype microarrays, and antimicrobial susceptibility testing to identify genomic, metabolic and phenotypic features as well as antimicrobial resistance (AMR) genes in T. pyogenes recovered from different livestock, companion and wildlife animals. For comparative genomic analysis, 83 T. pyogenes genomes, including 60 isolated in the current study and 23 publicly available genomes were evaluated. These genomes represented T. pyogenes strains originated from 16 different body sites of 11 different animal hosts (e.g. bovine, swine, ovine, cervid, bison, equine, chamois, feline). Additionally, 49 T. pyogenes isolates (bovine, ovine, deer, swine and feline) were evaluated for phenotypic antimicrobial resistance using disk diffusion, and for metabolic profiling using the Biology GENIII MicroPlates. We identified that T. pyogenes strains are not host- or body site-specific. The presence of conserved virulence genes (plo and fimA), as well as genotypic and phenotypic AMR may contribute to T. pyogeness ability to cause infections in livestock, wildlife, and pets. Most of the tested isolates metabolized diverse carbon sources and chemical compounds, suggesting that this metabolic versatility may contribute to T. pyogenes survival, competitive advantage, and pathogenic potential. ImportanceTrueperella pyogenes is an important animal pathogen with zoonotic potential, posing a significant health concern to both animals and humans due to its ability to cause infections across different animal host species and tissues. Current understanding of this pathogens adaptability and survival mechanisms is limited. Here, we evaluated the genomic, virulence, metabolic, and antimicrobial resistance characteristics of T. pyogenes recovered from 16 different body sites of 11 different animal hosts (livestock, companion, and wild animals). We identified multiple antimicrobial resistance and virulence genes that may enable T. pyogenes for sustained infection and transmission. Additionally, T. pyogenes strains displayed metabolic versatility which could also contribute to its ability to thrive in diverse environments. Understanding the genomic and metabolic, and antimicrobial resistance characteristics that enable T. pyogenes to colonize different anatomical sites within a host and its transmission between different animal species is important for the effective control of this pathogen.

microbiology↗