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Biology subjects

Sims, L. P.

Publications and source records attributed to Sims, L. P..

3 recordsLinked to original sources

Identification of genes important for response of Pseudomonas aeruginosa biofilms to ciprofloxacin exposure

Pseudomonas aeruginosa is an opportunistic pathogen that can cause severe infections in immunocompromised individuals, such as patients with cystic fibrosis where it commonly forms biofilms. Ciprofloxacin is used extensively to treat P. aeruginosa infections, but its effectiveness can be significantly reduced due to biofilm formation. Although many individual genes associated with biofilm formation or ciprofloxacin resistance have been characterised, the genetic basis of P. aeruginosa biofilm fitness related to antibiotic challenge remains incompletely understood. In this study we employed a whole genome screen to assay the impact of gene disruptions or altered gene expression on survival of P. aeruginosa biofilms exposed to different concentrations of ciprofloxacin. Genes impacting fitness in the biofilm context were identified by comparing the biofilm samples to planktonic samples harvested at 12h, 24h and 48h with and without ciprofloxacin. Genes associated with c-di-GMP regulation and Gac/Rsm signalling were identified as primary regulators for biofilm formation in the presence and absence of ciprofloxacin. In addition, a group of genes involved in respiration, metabolism (especially polyamine metabolism), and various transporter and efflux systems were identified as important for biofilm fitness. Ciprofloxacin specifically imposed a selective pressure on flagellar function and Psl production which were essential for survival in early biofilms. Moreover, transposon insertions within the CPA gene clusters (PA5448-PA5451 and PA5455-PA5456) and the salvage peptidoglycan recycling pathway showed reduced fitness in late biofilms at high concentration of ciprofloxacin, indicating that cell envelope integrity is beneficial for mature biofilms. This study identifies important determinants of survival for biofilms at different stages of maturity in the presence and absence of ciprofloxacin and implicates potential therapeutic targets for antibiofilm drug development.

genomics↗

The metallophore staphylopine is essential for survival of Staphylococcus epidermidis in human synovial fluid

Due to extended life expectancies, prosthetic joint infections are an increasing burden on healthcare institutions worldwide. The most commonly isolated causative agents are staphylococci, though the mechanisms underpinning survival and proliferation in synovial fluid are still not fully understood. In this study, we aimed to identify genes important for survival in synovial fluid using a transposon mutant library and RNAseq. We produced a transposon mutant library, containing approximately 57,000 unique insertion mutants, in Staphylococcus epidermidis strain 846. This library was grown in Muller Hinton broth or processed human synovial fluid samples, and Transposon-directed Insertion Sequencing (TraDIS) was used to identify genes involved in survival in synovial fluid. This identified importance of the his, pur and cnt operons. These genes were also upregulated in both Staphylococcus epidermidis 846 and the model Staphylococcus epidermidis strain RP62A when exposed to human synovial fluid. All these key pathways contribute to production of the metallophore staphylopine. To confirm staphyopine production is essential for survival in synovial fluid, a defined transposon insertion in the gene encoding for staphylopine export (cntE) mutant was used. This demonstrated impaired survival in synovial fluid compared to the wild type. RT-qPCR also showed that cntE was more highly expressed after exposure to infected synovial fluid (where metals will be depleted) than non-infected fluid. In conclusion, TraDIS and RNASeq both identified the importance of staphylopine for survival in human synovial fluid. This suggests an opportunity for exploitation for therapeutic or diagnostic use. Author SummaryStaphylococcus epidermidis is a common cause of prosthetic joint infection, however accurate diagnosis remains difficult. In this work we explored the genetic basis of Staphylococcus epidermidis survival in human synovial fluid using a large transposon mutant library, and identified which genes were differentially expressed upon exposure to the fluid. We found crossover between the datasets, which pointed to the importance of the metal acquisition compound staphylopine. The expression levels of the gene required for staphylopine export were shown to be dependent on the infection status of the individual samples were obtained from. We also found the gene cluster to be conserved in a range of staphylococcal species isolated from cases of prosthetic joint infection. Our work provides a valuable resource in the from of a large transposon mutant library, and provides a greater understanding of the requirements for staphylococcal survival in human synovial fluid, providing potential biomarkers for future diagnostic development.

microbiology↗

Sticking together: Independent evolution of biofilm formation in different species of staphylococci has occurred multiple times via different pathways

Various species of staphylococci cause a wide range of infections, including implant-associated infections which are often difficult to treat due to the presence of biofilms. Whilst some proteins involved in biofilm formation are known, the differences in biofilm production between staphylococcal species remains understudied. Currently biofilm formation by Staphylococcus aureus is better understood than for other members of the genus as more research effort has focused on this species. We assembled a panel of 385 non-aureus Staphylococcus isolates of 19 species from prosthetic joint infection as well as other clinical sources and reference strains. We assessed the biofilm forming ability of all strains using a high-throughput crystal violet assay. This identified distinct biofilm formation categories and we then compared the prevalence of Pfam domains and identified those which distinguished the categories as well as using machine learning to identify amino acid 20-mers linked to biofilm formation. This identified some domains within proteins already positively linked to biofilm formation but we also identified important domains not previously linked to biofilm formation. RT-qPCR confirmed the expression of selected genes predicted to encode important domains within biofilms in Staphylococcus epidermidis. The prevalence and distribution of biofilm associated domains showed a link to phylogeny, suggesting different Staphylococcus species have independently evolved different mechanisms of biofilm production. This work has identified different routes to biofilm formation in diverse species of Staphylococcus as well as suggesting independent evolution of biofilm has occurred multiple times across the genus. Understanding the mechanisms of biofilm formation in any given species is likely to require detailed study of relevant strains and the ability to generalise across the genus may be limited.

microbiology↗