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Smorowinski, P.

Publications and source records attributed to Smorowinski, P..

2 recordsLinked to original sources

Development of low cost, robust and reproducible biofilm static and pharmacodynamic assays

SynopsisO_ST_ABSBackgroundC_ST_ABSThe complexity of diagnosing and treating biofilm-associated infections necessitates a comprehensive strategy to mitigate the rising rates of antimicrobial resistance (AMR). Microtiter plate methods are used globally for determination of biofilm eradication concentrations (MBEC) but few have been adapted to observe pharmacodynamic observations. Here, we describe a method which allows for both static and pharmacodynamic assays of biofilm evaluation. MethodsA total of 150 clinical isolates from Southmead Hospital were assessed, representing five bacterial species (N=30 per bacterial species): Pseudomonas aeruginosa, Escherichia coli, Streptococcus pneumoniae, Staphylococcus aureus and Klebsiella pneumoniae. MBECs were determined using a developed method using 96 well plates and glass beads. MBECs of seven different antibiotics were compared to those determined using the established Calgary biofilm device (CBD). Dynamic pharmacodynamic evaluations to produce Biofilm Time Kill curve (BTKC) based on published planktonic time kill curve (TKC) data and ISO recommendations were carried out using the glass bead model for K. pneumoniae and ciprofloxacin, S. aureus and levofloxacin and S. pneumoniae and vancomycin. Quantification of biofilm biomass was assessed at 0, 2, 4, 8 and 24 hours and compared to planktonic culture survival under comparable challenge conditions. ResultsComparing MBEC results for all bacterial strains and antibiotic challenges showed no statistical difference between the glass bead and CBD methods (P <0.05). Biofilm BTKC AUBKC were inferior to planktonic equivalents but demonstrated specific pharmacodynamic patterns of biofilm reduction efficacy. MBEC correlated with biofilm BTKC penetration in line with clinical observations for S. aureus vs vancomycin and S. pneumoniae vs levofloxacin. ConclusionsThe glass bead biofilm models provide robust, reproducible alternatives to the traditional methods of determining MBEC and bridge the gap with biofilm pharmacodynamic evaluations. These methods also provide a low-cost option to current methods as only standard laboratory equipment is required, allowing for the generation of comprehensive data sets. This ensures greater translatability to complex in vitro models and clinical scenarios.

microbiology↗

Bacteriophage pharmacodynamics studied in an in vitro pharmacokinetic model of infection

SynopsisO_ST_ABSBackgroundC_ST_ABSBacteriophage therapy offers an alternative way to counter the menace of increasing antimicrobial resistance. Despite its use in clinical practice for many decades the basic tools to study the translational pharmacodynamics of phages are not available and it is recognised that lack of understanding of phage pharmacokinetic/dynamics (PK/PD) is a severe limitation in individual patient use and clinical trial design. MethodsTraditional in vitro PK/PD evaluation tools were used to assess the antibacterial effect of single exposures of a bacteriophage cocktail against 4 strains of E. coli with potentially different patterns of response to phage. Initially, time-kill curves (TKC) were performed over 48hr and subsequently a dilutional in vitro model (IVM) was used to assess the antibacterial effects over 72hr. ResultsIn TKC, the four E. coli strains showed different patterns of kill and regrowth when exposed to phage with two strains showing a sustained drop in bacterial viable count and two showing initial kill and regrowth. Using the IVM similar bacterial pharmacodynamic patterns were observed, and phage titre increased inversely but consistently with E. coli kill. ConclusionsAn In vitro dilutional model can be used to study the antibacterial effect of a phage cocktail on E.coli showing strain-to-strain variation in bacterial killing and bacteriophage titre. Such models can be used to provide more nuanced information on phage pharmacokinetics/dynamics and translationally useful information for dosing in humans.

microbiology↗