Authors
Vedithi, S. C., Rees, R., Malhotra, S., Munir, A., Matusevicius, M., Alsulami, A. F., Beaudoin, C. A., Sunkara, K. S., Das, M., Blundell, T. L., Floto, R. A.
Abstract
Structural biology has advanced antimicrobial discovery by enabling drug-target identification and validation and supporting structure-guided inhibitor design. However, Mycobacterium leprae (M. leprae), the obligate intracellular bacillus that causes leprosy (Hansen's disease), remains structurally under-characterised. Only 10 Protein Data Bank (PDB) entries represent seven unique proteins within a proteome encoded by 1,603 protein-coding genes. To address this gap, we present HANSEN (https://hansen-leprosy.medschl.cam.ac.uk/home), an integrated structural and functional resource containing computationally predicted three-dimensional models across the M. leprae proteome. Monomeric and oligomeric models were generated using complementary structure-prediction methods, including AlphaFold 3, Boltz-1, Chai-1, and Boltz-2. Models were annotated with predicted Local Distance Difference Test (pLDDT) scores and Predicted Aligned Error (PAE) values. Ligand-binding pockets were predicted using AF2BIND, P2Rank, and fpocket, and ligands from the best-matching PDB templates were modelled within oligomeric complexes. Residue-level B-cell epitope propensity was estimated using DiscoTope-3.0, and ProteomeLM-derived essentiality scores were calculated for each protein. These features were integrated into a relational web database with interactive visualisation through Mol*. We also ranked all 1,603 proteins using a Target Priority Score ranging from 0 to 100. The score combines ProteomeLM-derived essentiality with pocket and AF2BIND predictions, functional annotations, and Boltz-2-associated measures of model quality and tractability. The essentiality model used a logistic-regression head trained on Mycobacterium tuberculosis (M. tuberculosis) Tn-seq labels. It achieved an AUROC of 0.84 in homology-grouped M. tuberculosis cross-validation and a transfer AUROC of 0.78 against the orthologue-aligned M. leprae reference set. Proteins were assigned to four tiers, ranging from high priority to exploratory candidates. Together, HANSEN provides a practical resource for generating and prioritising experimentally testable hypotheses for M. leprae target discovery and structure-guided drug development.
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bioRxiv
The authors list and abstract were imported from bioRxiv on 08 Aug 2026.
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