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Bycroft, M.

Publications and source records attributed to Bycroft, M..

2 recordsLinked to original sources

A generalisable method for the purification and biophysical characterisation of bacterial membrane receptors

Membrane-embedded bacterial receptors are challenging to express and purify in soluble form, yet their isolated domains are essential tools for structural and ligand-discovery studies. Pseudomonas aeruginosa relies on the TonB-dependent heme receptor HasR for iron acquisition, a process central to its pathogenicity. Here, we report a robust strategy for the recombinant expression, purification, and biophysical characterisation of the two soluble HasR domains directly involved in heme uptake: the N-terminal plug and the Secretin/TonB short N-terminal domain. Each domain was expressed individually in E. coli and purified to homogeneity, adopting well-folded conformations as confirmed by circular dichroism, NMR spectroscopy, and mass spectrometry. We then engineered a fusion construct containing both domains and systematically evaluated multiple solubilisation tags. A GST-His dual-affinity strategy enabled efficient purification of the construct, whereas His-tag alone resulted in insoluble protein and HLT-tag fusions suffered from non-specific proteolysis. Biophysical analyses revealed that the Secretin/TonB short N-terminal domain remains stably folded within the fusion construct, while the N-terminal plug domain becomes partially disordered, a finding further supported by hydrogen/deuterium exchange mass spectrometry. Together, these results establish a generalizable workflow for producing soluble receptor domains from membrane proteins and provide validated HasR constructs suitable for downstream ligand-screening applications, including aptamer and nanobody discovery.

biophysics↗

Targeting the Plasmodium falciparum UCHL3 ubiquitin hydrolase using chemically constrained peptides

The ubiquitin-proteasome system is essential to all eukaryotes and has been shown to be critical to parasite survival as well, including Plasmodium falciparum, the causative agent of the deadliest form of malarial disease. Despite the central role of the ubiquitin-proteasome pathway to parasite viability across its entire life-cycle, specific inhibitors targeting the individual enzymes mediating ubiquitin attachment and removal do not currently exist. The ability to disrupt P. falciparum growth at multiple developmental stages is particularly attractive as this could potentially prevent both disease pathology, caused by asexually dividing parasites, as well as transmission which is mediated by sexually differentiated parasites. The deubiquitinating enzyme PfUCHL3 is an essential protein, transcribed across both human and mosquito developmental stages. PfUCHL3 is considered hard to drug by conventional methods given the high level of homology of its active site to human UCHL3 as well as to other UCH domain enzymes. Here, we apply the RaPID mRNA display technology and identify constrained peptides capable of binding to PfUCHL3 with nanomolar affinities. The two lead peptides were found to selectively inhibit the deubiquitinase activity of PfUCHL3 versus HsUCHL3. NMR spectroscopy revealed that the peptides do not act by binding to the active site but instead block binding of the ubiquitin substrate. We demonstrate that this approach can be used to target essential protein-protein interactions within the Plasmodium ubiquitin pathway, enabling the application of chemically constrained peptides as a novel class of anti-malarial therapeutics.

biophysics↗