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Hallam, J. C.

Publications and source records attributed to Hallam, J. C..

3 recordsLinked to original sources

An intact S-layer is advantageous to Clostridioides difficile within the host.

Clostridioides difficile is responsible for substantial morbidity and mortality in antibiotically-treated, hospitalised, elderly patients, in which toxin production correlates with diarrhoeal disease. While the function of these toxins has been studied in detail, the contribution of other factors, including the paracrystalline surface layer (S-layer), to disease is less well known. Here, we highlight the essentiality of the S-layer in vivo by reporting the recovery of S-layer revertants, following infection with the S-layer-null strain, FM2.5. Sequencing of the slpA gene revealed either correction of the original point mutation or modification of the sequence upstream of the mutation, which restored the reading frame, and translation of slpA. Selection of these strains was rapid, with up to 90% of isolates identified as revertants 24 h post infection. Two revertant isolates, RvA and RvB, showed modification of 3 and 13 amino acids respectively, compared to wild type sequence. Structural determination of SlpA from RvB revealed a different orientation of its domains, resulting in a reorganisation of the lattice assembly and changes in interacting interfaces which might result in functional differences. These revertants showed differing patterns of disease in vivo; RvA causing equivalent severity to R20291 and RvB an attenuated FM2.5-like phenotype. Comparative RNA sequencing (RNA-Seq) analysis of in vitro grown isolates showed large changes in differentially expressed genes (DEGs) between R20291 and FM2.5 namely in TcdA/TcdB expression, in transcripts associated with sporulation and those linked to cell wall integrity, which may account for attenuation observed in vivo. In comparison, smaller differences were observed between RvA/R20291, and RvB/FM2.5 respectively, which correlated with observed disease severity in vivo. Cumulatively, these data highlight that the S-layer plays a role in C. difficile disease. Author SummaryThe S-layer of C. difficile is a paracrystalline array that covers the outer surface of the bacterial cell but its contribution to overall disease remains unclear. A previously described, spontaneous slpA-null mutant, FM2.5, with a point mutation in slpA offered an opportunity to study the role of the S-layer in vivo. Here, we confirm that this strain is less virulent in vivo despite effectively colonising the host and producing toxin. We also show in vivo selection for sequence modifications that restore slpA translation and produce an S-layer. While such modifications do not affect the overall 3D structure of individual SlpA (sub)domains, they can lead to altered orientation of the structural domains and subsequent S-layer assembly. Importantly, RNA-Seq analysis in vitro showed large differences in gene expression between FM2.5 and R20291. Detected differences in transcription of genes involved in toxin expression and sporulation suggests that the S-layer provides a selective survival advantage within the host, which contributes to disease severity.

microbiology↗

The therapeutic potential of D-Serine in reducing expression of the cytopathic genotoxin colibactin

Some Escherichia coli strains belonging mainly to the B2 phylogroup harbour the pks island, a 54 kb genomic island encoding the biosynthesis genes for a genotoxic compound named colibactin. In eukaryotic cells, colibactin can induce DNA damage, cell cycle arrest and chromosomal instability. Moreover, production of colibactin has been implicated in the development of colorectal cancer. In this study, we demonstrate the inhibitory effect of D-Serine on the expression of the pks island in two colibactin-producing strains, CFT073 and Nissle 1917, and determine the implications for cytopathic effects on host cells. To investigate the specificity of the inhibitory effect of D-Serine, we also tested a comprehensive panel of proteinogenic L-amino acids and corresponding D-enantiomers for their ability to modulate clbB transcription using RT-qPCR. Several D-amino acids exhibited the ability to inhibit expression of clbB, with D-Serine exerting the strongest repressing activity (3.81-fold in CFT073; 3.80-fold in Nissle 1917) and thus, we focussed additional experiments on D-Serine. To investigate the cellular effect, we investigated if repression of colibactin by D-Serine could reduce the cytopathic responses normally observed during infection of HeLa cells with pks+ strains. Levels of {gamma}-H2AX (a marker of DNA double strand breaks) were reduced 2.75-fold in cells infected with D-Serine treatment. Moreover, exposure of pks+ E. coli to D-Serine during infection caused a reduction in cellular senescence that was observable at 72 h post infection. The recent finding of an association between pks-carrying commensal E. coli and CRC, highlights the necessity for the development of colibactin targeting therapeutics. Here we show that D-Serine can reduce expression of colibactin, and inhibit downstream cellular cytopathy, illuminating its therapeutic potential to prevent colibactin-associated disease.

microbiology↗

D-serine induces distinct transcriptomes in diverse Escherichia coli pathotypes

Appropriate interpretation of environmental signals facilitates niche specificity in pathogenic bacteria. However, the responses of niche-specific pathogens to common host signals are poorly understood. D-serine (D-ser) is a toxic metabolite present in highly variable concentrations at different colonisation sites within the human host that we previously found is capable of inducing changes in gene expression. In this study, we made the striking observation that the global transcriptional response of three Escherichia coli pathotypes - enterohaemorrhagic E. coli (EHEC), uropathogenic E. coli (UPEC) and neonatal meningitis associated E. coli (NMEC) - to D-ser was highly distinct. In fact, we identified no single differentially expressed gene common to all three strains. We observed the induction of ribosome-associated genes in extraintestinal pathogens UPEC and NMEC only, and the induction of purine metabolism genes in gut-restricted EHEC and UPEC indicating distinct transcriptional responses to a common signal. UPEC and NMEC encode dsdCXA - a genetic locus required for the detoxification and hence normal growth in the presence of D-ser. Specific transcriptional responses were induced in strains accumulating D-ser (WT EHEC and UPEC/NMEC mutants lacking the D-ser-responsive transcriptional activator DsdC), corroborating the notion that D-ser is an unfavourable metabolite if not metabolized. Importantly, many of the UPEC-associated transcriptome alterations correlate with published data on the urinary transcriptome, supporting the hypothesis that D-ser sensing forms a key part of urinary niche adaptation in this pathotype. Collectively, our results demonstrate distinct pleiotropic responses to a common metabolite in diverse E. coli pathotypes, with important implications for niche selectivity. ImportanceThe pathogenic Escherichia coli comprise a group of highly specialized bacteria, some of which are capable of disseminating from the intestine and causing disease at other sites within the human host. Chemicals (metabolites) derived from the host and other microorganisms shape the behaviour of E. coli in different environments. Here we investigate the changes in gene expression that occur in E. coli strains capable (UPEC and NMEC) and incapable (EHEC) of metabolizing D-ser - a metabolite specifically enriched in the urine and in regions of the brain. We show that EHEC, UPEC and NMEC - distinct pathotypes associated with disease in the gut, bladder and brain, respectively, respond in a distinct manner to D-ser. Many of the genes affected by D-ser have been shown to be important during disease, highlighting the importance of varied responses to this common signal in host infection.

molecular biology↗