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Raju, D.

Publications and source records attributed to Raju, D..

3 recordsLinked to original sources

PNAG exopolysaccharide eradication gives neutrophils access to Staphylococcus aureus biofilm infections

Staphylococcus aureus (S. aureus) can form biofilms on biotic or abiotic surfaces making biofilm infections a relevant clinical problem. Biofilms can evade immunity and resist antimicrobial treatment, and as such an understanding of biofilm infection in vivo is necessary to inform new therapeutics. Using a mouse model of S. aureus foreign-body skin infection and intravital microscopy, we imaged the interactions between neutrophils and S. aureus biofilm. We observed that neutrophils were separated from bacteria by a biofilm matrix composed of the polysaccharide intercellular adhesin (PIA), an exopolysaccharide chemically designated as poly-N-acetylglucosamine (PNAG) that is produced by enzymatic machinery encoded by the icaADBC operon. Infection with icaADBC-deficient S. aureus strains led to increased neutrophil infiltration and access to bacteria and resulted in full clearance of infection by 7 days. Moreover, enzymatic treatment with PgaB, which hydrolyzes partially deacetylated PNAG, was shown to disaggregate the biofilm giving neutrophils access into the infection site to improve clearance. Taken together, our results show that PNAG shelters S. aureus biofilms from innate host defense, and that targeting the biofilm matrix with glycoside hydrolases is a promising therapeutic avenue to treat S. aureus biofilm infections. Author SummaryStaphylococcus aureus is a major cause of biofilm-associated infections, which pose a major threat to human health. A biofilm is difficult to treat since bacteria are protected from antimicrobials within an extracellular matrix. This study is the first to show that the PgaB enzyme, a glycoside hydrolase, can disrupt the S. aureus biofilm matrix in vivo. Disrupting the biofilm matrix with PgaB gives neutrophils access to bacteria for elimination.

immunology↗

Bps polysaccharide of Bordetella pertussis resists antimicrobial peptides by functioning as a dual surface shield and decoy and converts Escherichia coli into a respiratory pathogen.

Infections and disease caused by the obligate human pathogen Bordetella pertussis (Bp) are increasing, despite widespread vaccinations. The current acellular pertussis vaccines remain ineffective against nasopharyngeal colonization, carriage, and transmission. In this work, we tested the hypothesis that Bordetella polysaccharide (Bps), a member of the poly-{beta}-1,6-A-acetyl-D-glucosamine (PNAG/PGA) family of polysaccharides promotes respiratory tract colonization of Bp by resisting killing by antimicrobial peptides (AMPs). Genetic deletion of the bpsA-D locus, as well as treatment with the specific glycoside hydrolase Dispersin B, increased susceptibility to AMP-mediated killing. Bps was found to be both cell surface-associated and secreted during laboratory growth and mouse infections. Addition of bacterial supernatants containing Bps and purified Bps increased B. pertussis resistance to AMPs. By utilizing ELISA, immunoblot and flow cytometry assays, we show that Bps functions as a dual surface shield and decoy by inhibiting AMP binding. Co-inoculation of C57BL/6J mice with a Bps-proficient strain enhanced respiratory tract survival of the Bps-deficient strain. In combination, the presented results highlight the critical role of Bps as a central driver of B. pertussis pathogenesis. Heterologous production of Bps in a non-pathogenic E. coli K12 strain increased AMP resistance in vitro, and augmented bacterial survival and pathology in the mouse respiratory tract. Therefore, by conferring virulence traits across bacterial genera, Bps transforms a primarily intestinal and urinary tract bacterium into a respiratory pathogen. These studies can serve as a foundation for other PNAG/PGA polysaccharides and for the development of an effective Bp vaccine that includes Bps. Author summaryPertussis or whooping cough, caused by the obligate human pathogen Bordetella pertussis (Bp), is resurging in many countries. Currently, the mechanism by which B. pertussis subverts and resists host immunity is poorly known. In this manuscript, we examined the role of the B. pertussis polysaccharide Bps in promoting resistance to antimicrobial peptides (AMPs), a critical component of host immune defense. We show that the presence of Bps on the bacterial cell surface enhanced AMP resistance. Bps was secreted both during bacterial growth and during mouse infections. We further found that Bps functioned both as a surface shield and decoy, thereby inhibiting AMP binding. Simultaneous infection of mice with Bps-proficient and Bps- deficient strains resulted in greater survival of the Bps-deficient strain in the mouse respiratory tract. Finally, production of Bps in a non-pathogenic E. coli strain increased AMP resistance in vitro, and increased bacterial survival and heightened pathology in the mouse respiratory tract. Our study provides new insights into how B. pertussis has evolved to survive in the mammalian respiratory tract. Additionally, these studies underscore the potential of a single virulence factor to convert a non-pathogenic bacterium into a respiratory tract pathogen.

microbiology↗

Structure, dynamics, and inhibition of Staphylococcus aureus m1A22-tRNA methyltransferase

The enzyme m1A22-tRNA methyltransferase (TrmK) catalyses the transfer of a methyl group from SAM to the N1 of adenine 22 in tRNAs. TrmK is essential for Staphylococcus aureus survival during infection, but has no homologue in mammals, making it a promising target for antibiotic development. Here we describe the structural and functional characterisation of S. aureus TrmK. Crystal structures are reported for S. aureus TrmK apoenzyme and in complexes with SAM and SAH. Isothermal titration calorimetry showed that SAM binds to the enzyme with favourable but modest enthalpic and entropic contributions, whereas SAH binding leads to an entropic penalty compensated by a large favourable enthalpic contribution. Molecular dynamics simulations point to specific motions of the C-terminal domain being altered by SAM binding, which might have implications for tRNA recruitment. Activity assays for S. aureus TrmK-catalysed methylation of WT and position 22 mutants of tRNALeu demonstrate that the enzyme requires an adenine at position 22 of the tRNA. Intriguingly, a small RNA hairpin of 18 nucleotides is methylated by TrmK depending on the position of the adenine. In-silico screening of compounds suggested plumbagin as a potential inhibitor of TrmK, which was confirmed by activity measurements. Furthermore, LC-MS indicated the protein was covalently modified by one equivalent of the inhibitor, and proteolytic digestion coupled with LC-MS identified Cys92, in the vicinity of the SAM-binding site, as the sole residue modified. These results these results identify a cryptic binding pocket of S. aureus TrmK and lay the foundation for future structure-based drug discovery.

biochemistry↗