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Daniel, R. A.

Publications and source records attributed to Daniel, R. A..

2 recordsLinked to original sources

Essential Roles of RodA Peptidoglycan Polymerase and PBP2 Transpeptidase in Expression of Cell Wall-Spanning Supramolecular Organelles and Modulating Salmonella Virulence

The increased spread of multidrug-resistant bacteria no longer sensitive to commonly used antibiotics poses a major threat to human health. The search for potential new drug targets is critical in disease control and prevention. Whilst several components of the cell wall synthesis machinery are already targeted by beta-lactam antibiotics, other elements of this machinery present opportunities for novel drug targets. Landmark studies revealed RodA exhibits peptidoglycan polymerase activity in Bacillus subtilis and Escherichia coli, highlighting RodA as a prime for the next generation of antimicrobial drugs. However, the role of RodA in virulence remains unexplored. Through targeted mutagenesis, virulence gene reporter assays, and phenotypic screening, we demonstrate that the presence of RodA or PBP2, is intrinsically linked to the regulation of virulence gene expression in Salmonella. Specifically, deletion of either of these components causes both disruption in cell morphology and a complete downregulation in major cell invasion-associated virulence factors in vitro, and attenuated virulence in vivo. Significantly, this study highlights the importance of RodA and PBP2 in both the biology and virulence of an important bacterial pathogen, identifying them as promising targets for developing new antibiotics.

microbiology↗

Insights into the role of lipoteichoic acids in Bacillus subtilis- a new function for MprF

Gram-positive bacterial cells are protected from the environment by a cell envelope which comprises of layers of peptidoglycan that maintain the cell shape and teichoic acids polymers whose biological function remains unclear. In Bacillus subtilis, loss of all Class A Penicillin-Binding Proteins (aPBPs) which function in peptidoglycan synthesis is conditionally lethal. Here we show that this lethality is associated with an alteration of the lipoteichoic acids (LTA) and the accumulation of the major autolysin LytE in the cell wall. Our analysis provides further evidence that the length and abundance of LTA acts to regulate the cellular level and activity of autolytic enzymes, specifically LytE. Importantly, we identify a novel function for the aminoacyl-phosphatidylglycerol synthase MprF in the modulation of LTA biosynthesis in B. subtilis and Staphylococcus aureus. This finding has implications for our understanding of antimicrobial resistance (particularly daptomycin) in clinically relevant bacteria and the involvement of MprF in the virulence of pathogens, such as methicillin resistant S. aureus.

microbiology↗