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Whiteside, J. R.

Publications and source records attributed to Whiteside, J. R..

2 recordsLinked to original sources

Expanding Macrocyclic Topology through Cysteine-to-N-Terminal Cyclisation Enables Covalent Peptide Inhibitor Discovery

Macrocyclic peptides are an attractive therapeutic modality capable of engaging challenging protein targets while retaining many favourable drug-like properties. Their high-affinity binding also provides an ideal framework for proximity-driven covalent inhibition through incorporation of latent electrophiles. Phage display enables the high-throughput screening of billion-member macrocyclic peptide libraries; however, existing libraries rely predominantly on cysteine-mediated cyclisation, restricting the range of macrocyclic topologies available for ligand discovery. Here, we report a mild and efficient cyclisation strategy based on a bromomethyl picolinaldehyde (BMP) linker that reacts with a cysteine side chain and the peptide N-terminus to generate a previously unexplored macrocyclic topology incorporating neighbouring pyridine and imidazolidinone rings. The chemistry is compatible with phage display and enabled screening of BMP-cyclised peptide libraries against plasma kallikrein, yielding a potent macrocyclic inhibitor. The BMP-cyclised peptide displayed substantially greater potency than analogous peptides cyclised through either a disulfide bond or the widely used linker 1,4-bis(bromomethyl)benzene (DBMB). Furthermore, comparison with an equivalent DBMB-cyclised library demonstrated that BMP-mediated cyclisation enabled access to binding motifs not identified by conventional cysteine-to-cysteine cyclisation. Finally, positional sulfur(VI) fluoride exchange (SuFEx) electrophile scanning converted the BMP-derived hit into a selective covalent macrocyclic activity-based probe capable of labelling plasma kallikrein in human plasma. Together, these findings establish BMP-mediated cyclisation as a versatile strategy for expanding the topological diversity of phage-displayed macrocycles and accelerating the discovery of both reversible and covalent macrocyclic peptide ligands.

biochemistry↗

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↗