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Lavender, H.

Publications and source records attributed to Lavender, H..

2 recordsLinked to original sources

An antibody-drug conjugate exploiting a bacterial immune evasion mechanism is effective against multidrug resistant Neisseria gonorrhoeae

Neisseria gonorrhoeae is the causative agent of gonorrhoea, a sexually transmitted infection which is rising in incidence, with increasing drug-resistant strains posing a significant public health threat. To address the urgent need for novel therapies, we developed an antibody-drug conjugate (ADC) that targets this important human pathogen. We utilised Tridecaptin A1 a potent antimicrobial peptide against Gram-negative bacteria but exhibits significant toxicity against human cells, limiting its development for clinical use. By conjugating the Tridecaptin A1 analogue, Oct-TriA1 to a monoclonal antibody (mAb) that specifically targets gonococcal MtrE, the outer membrane component of a drug efflux pump that is upregulated in resistant strains, we aim to deliver selectively deliver the antimicrobial peptide to the gonococcus. However, Oct-TriA1 was not bactericidal when directly conjugated to mAb. To circumvent this, we exploited an immune evasion mechanism employed by the gonococcus by introducing a linker between Oct-TriA1 and the mAb which is specifically cleaved by the IgA protease (IgAP) secreted by the gonococcus; the IgAP inactivates human IgA. This ADC has no detectable toxicity for relevant human cells, kills the gonococcus in an MtrE- and IgAP-dependent manner, and is active against a strain which is resistant to first line agents. This modular ADC platform could be extended to other bacterial pathogens which employ proteases that use proteases to evade immune killing, offering a new strategy in the fight against antimicrobial resistance.

microbiology↗

DMB labelling for detection and analysis of capsular polysaccharides

Bacterial capsules are major virulence factors enabling systemic infection by undermining innate and adaptive immunity. Capsular polysaccharides are also the antigen in some of the most successful antibacterial vaccines - including the pneumococcal, neisserial and Hib conjugate vaccines. However, it remains exceptionally challenging to study capsules, primarily due to their high chemical diversity and the limited methods available for their detection and analysis. We describe a robust biochemical method for detection and analysis of ABC transporter-dependent capsular polysaccharides, a major class of capsules that are associated with extraintestinal pathogenic Escherichia coli (ExPEC). The method involves release and fluorescent tagging of polysaccharides from the cell surface. Anion exchange chromatography of labelled samples reveals the presence, relative abundance, and length-distribution of these diverse polysaccharide antigens. The method provides a modern approach to detecting the capsule phenotype, bridging a critical gap left by the decline of serotyping assays. It will enhance our understanding of fundamental capsule biology and advance the development of capsule-targeting vaccines.

biochemistry↗