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Minton, N. P.

Publications and source records attributed to Minton, N. P..

4 recordsLinked to original sources

Clostridioides difficile binary toxin binding component (CDTb) increases virulence in a hamster model

Clostridioides difficile is the leading cause of hospital-acquired gastrointestinal infection, in part due to the existence of binary toxin (CDT)-expressing hypervirulent strains. We have previously shown that CDT interacts with the TLR2/6 heterodimer to induce inflammation, and in this study we further explore this interaction as well as the contribution of the separate components of CDT, CDTa and CDTb. We found that the binding component, CDTb, is capable of inducing inflammation. Additionally, complementation of a CDT-deficient C. difficile strain with CDTb alone restored virulence in a hamster model of C. difficile infection. Overall, this study demonstrates that the binding component of C. difficile binary toxin contributes to virulence during infection.

microbiology

A novel bacteriophage with broad host-range against Clostridioides difficile ribotype 078 elucidates the phage receptor.

Bacteriophage represent a promising option for the treatment of Clostridioides difficile (formerly Clostridium difficile) infection (CDI), which at present relies on conventional antibiotic therapy. The specificity of bacteriophages should prevent the dysbiosis of the colonic microbiota associated with the treatment of CDI with antibiotics. Whilst numerous phages have been isolated, none have been characterised with broad host-range activity towards PCR ribotype (RT) 078 C. difficile strains despite their considerable relevance to medicine and agriculture. In this study, we isolated four novel C. difficile Myoviruses: {Phi}CD08011, {Phi}CD418, {Phi}CD1801 and {Phi}CD2301. Their characterisation revealed that each was comparable with other C. difficile phages described in the literature, with the exception of {Phi}CD1801 which exhibited a broad host-range activity towards RT 078, infecting 15/16 (93.8%) of the clinical isolates tested. In order for wild-type phages to be exploited in the effective treatment of CDI, an optimal phage cocktail must be assembled that provides broad coverage against all C. difficile RTs. In an attempt to advance these efforts, we conducted a series of fundamental experiments that identified the C. difficile SlpA, the major constituent of the C. difficile surface-layer (S-layer), as the phage receptor. Thus, we demonstrated that {Phi}CD1801 could only bind to RT 012 or RT 027 strains in the presence of a plasmid-borne S-layer cassette corresponding to RT 078. Armed with this information, efforts should now be directed towards the isolation of phages with broad host-range activity against each of the fourteen described S-layer cassette types which could form the basis of an effective cocktail active against a wide range of C. difficile isolates. ImportanceResearch into phage therapy has seen a resurgence in recent years owing to growing concerns regarding antimicrobial resistance. Phage research for potential therapy against Clostridium difficile infection (CDI) is in its infancy, where an optimal "one size fits all" phage cocktail is yet to be derived. The pursuit thus far, has aimed to find phages with the broadest possible host-range. Although, for C. difficile strains belonging to certain PCR ribotypes (RTs), in particular RT 078, phages with broad-host range activity are yet to be discovered. In this study, we isolate 4 novel Myoviruses including {Phi}CD1801, which exerts the broadest host-range activity towards RT 078 reported in the literature. Through the application of {Phi}CD1801 to robust binding assays, we elucidate SlpA as the phage receptor on the bacterial cell surface. Our finding suggests that an optimal "one size fits all" combinatorial phage cocktail, could theoretically comprise 14 phages, each targeting one of the 14 described S-layer cassettes of C. difficile.

microbiology

Application of transposon-insertion sequencing to determine gene essentiality in the acetogen Clostridium autoethanogenum

The majority of the genes present in bacterial genomes remain poorly characterised with up to one third of those that are protein encoding having no definitive function. Transposon insertion sequencing represents a high-throughput technique that can help rectify this deficiency. The technology, however, can only be realistically applied to easily transformable species leaving those with low DNA-transfer rates out of reach. Here we have developed a number of approaches that overcome this barrier in the autotrophic species Clostridium autoethanogenum using a mariner-based transposon system. The inherent instability of such systems in the Escherichia coli conjugation donor due to transposition events was counteracted through the incorporation of a conditionally lethal codA marker on the plasmid backbone. Relatively low frequencies of transformation of the plasmid into C. autoethanogenum were circumvented through the use of a plasmid that is conditional for replication coupled with the routine implementation of an Illumina library preparation protocol that eliminates plasmid-based reads. A transposon library was then used to determine the essential genes needed for growth using carbon monoxide as a sole carbon and energy source. IMPORTANCEAlthough microbial genome sequences are relatively easily determined, assigning gene function remains a bottleneck. Consequently, relatively few genes are well characterised, leaving the function of many as either hypothetical or entirely unknown. High-throughput, transposon sequencing can help remedy this deficiency, but is generally only applicable to microbes with efficient DNA-transfer procedures. These exclude many microorganisms of importance to humankind either as agents of disease or as industrial process organisms. Here we developed approaches to facilitate transposon-insertion sequencing in the acetogen Clostridium autoethanogenum, a chassis being exploited to convert single-carbon waste gases, CO and CO2, into chemicals and fuels at an industrial scale. This allowed the determination of gene essentiality under heterotrophic and autotrophic growth providing insights into the utilisation of CO as a sole carbon and energy source. The strategies implemented are translatable and will allow others to apply transposon-insertion sequencing to other microbes where DNA-transfer has until now represented a barrier to progress.

molecular biology

RNPP-type quorum sensing regulates solvent formation and sporulation in Clostridium acetobutylicum

The strictly anaerobic bacterium Clostridium acetobutylicum is well known for its ability to convert sugars into organic acids and solvents, most notably the potential biofuel butanol. However, the regulation of its fermentation metabolism, in particular the shift from acid to solvent production, remains poorly understood. The aim of this study was to investigate whether cell-cell communication plays a role in controlling the timing of this shift or the extent of solvent formation. Analysis of the available C. acetobutylicum genome sequences revealed the presence of eight putative RNPP-type quorum sensing systems, here designated qssA to qssH, each consisting of RNPP-type regulator gene followed by a small open reading frame encoding a putative signalling peptide precursor. The identified regulator and signal peptide precursor genes were designated qsrA to qsrH and qspA to qspH, respectively. Triplicate regulator mutants were generated in strain ATCC 824 for each of the eight systems and screened for phenotypic changes. The qsrB mutants showed increased solvent formation during early solventogenesis and hence the QssB system was selected for further characterisation. Overexpression of qsrB severely reduced solvent and endospore formation and this effect could be overcome by adding short synthetic peptides to the culture medium representing a specific region of the QspB signalling peptide precursor. In addition, overexpression of qspB increased the production of acetone and butanol and the initial (48-hour) titre of heat-resistant endospores. Together, these findings establish a role for QssB quorum sensing in the regulation of early solventogenesis and sporulation in C. acetobutylicum.

microbiology