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Beswick, P.

Publications and source records attributed to Beswick, P..

3 recordsLinked to original sources

Discovery, characterisation and optimisation of bicyclic peptide inhibitors that disarm Staphylococcus aureus a-hemolysin

-Hemolysin (Ahly) is a major Staphylococcus aureus virulence determinant implicated in tissue injury and immune dysregulation; antibody inhibitors have reached clinical trials but alternatives with improved ease of manufacture and tissue penetration are desirable. Here we demonstrate that phage-derived bicyclic peptides can serve as compact, chemically tractable Ahly neutralisers. Using TATB-scaffolded M13 phage libraries we identified WNP-motif containing bicyclic binders, with a lead hit of Peptide 14 (KD = 1792nM) and progressed the lead by iterative affinity maturation to Peptide 20 (KD = 609 nM) and by incorporation of strategically chosen non-canonical amino acids to yield Peptide 88 (KD = 96 nM). A 2.2 [A] co-crystal structure with AhlyH35A locates the binding footprint on the rim domain and explains the critical role of the WNP motif in target engagement. Functional assays show that the Peptide 88 blocks Ahly mediated hemolysis, inhibits Ahly driven ADAM10 activation, and elucidate its inhibitory mechanism of preventing Ahly binding to human A549 epithelial cells. Peptide 88 protects A549 cells from recombinant toxin and attenuates cytotoxicity in S. aureus co-culture experiments, whilst showing no toxicity to A549 cells. Bicyclic peptides thus represent a new and promising anti-virulence modality: small, synthetically accessible molecules that mimic antibody recognition, with therapeutic potential against S. aureus infections.

molecular biology↗

Investigation of anti-SARS CoV-2 multimeric bicyclic peptide inhibitors in a range of pre-clinical therapeutic settings

The spread of respiratory viruses, such as Influenza and SARS-CoV-2 has presented significant challenges over the last 30 years with few effective therapeutic options available to this day. Bi-cyclic peptides represent a unique, modular, modality in the antiviral armamentarium against future pandemics. This study provides a deeper evaluation of multivalent bi-cyclic (Bicycle(R)) molecule efficacy in several preclinical SARS-CoV-2 challenge settings. We explore both pre-exposure prophylaxis and post-exposure therapeutic settings via subcutaneous and intranasal routes of administration. We contextualize this further in bespoke scenarios of immune compromisation, and viral transmission. Promisingly, in all studies we observe efficacy, significantly reducing infectious viral burden at each study endpoint. These data further support candidacy of Bicycle molecules as a differentiated antiviral therapeutic class in the context of pandemic preparedness. ImportanceThe COVID-19 pandemic, triggered a rapid wave of innovation, accelerating the delivery of new vaccine technology and anti-viral treatments. In our first paper, we described the discovery and molecular optimization of Bicycle molecules as a novel drug class for the potential treatment of SARS CoV-2. Here, we have performed deeper characterization of these molecules in established animal models that simulate SARS-CoV-2 transmission, testing more convenient delivery routes, such as intra-nasal. The Bicycle molecules demonstrated positive outcomes in each of these studies and suggest that Bicycle molecules, as convenient and effective anti-viral treatments, could be an important addition to help future preparedness against new viral pandemics.

pharmacology and toxicology↗

Discovery and chemical optimisation of a Potent, Bi-cyclic (Bicycle(R)) Antimicrobial Inhibitor of Escherichia coli PBP3

Penicillin binding proteins (PBPs) are well validated antimicrobial targets, but the prevalence of {beta}-lactamase driven resistance and, more rarely, target-based mutations, necessitates new classes of PBP-targeting drugs. Here we describe the discovery and optimisation of novel, bicyclic peptide (Bicycle(R)) inhibitors of E. coli PBP3 (EcPBP3) using a proprietary phage display platform, and their conjugation to linear antimicrobial peptides to confer outer membrane permeation. These molecules exhibited high-affinity binding to E. coli PBP3 and a viable spectrum of killing activity against clinically relevant species of the Enterobacterales. X-ray crystallography was used to explore the mode of binding to PBP3, enabling increased target affinity and improvement of in vitro stability. These compounds bind to the transpeptidase active site cleft of PBP3 and represent a novel non-{beta}-lactam chemical class of high affinity, non-covalent penicillin binding protein inhibitors.

biochemistry↗