Mass Spectrometry-Complemented Molecular Modeling Predicts The Interaction Interface For A Camelid Single-Domain Antibody Targeting The Plasmodium Falciparum Circumsporozoite Protein’s C-Terminal Domain

dc.contributor.authorOpuni, K.F.M.
dc.contributor.authorRuß, M.
dc.contributor.authorGeens, R.
dc.contributor.authorVocht, L.D.
dc.contributor.authoret al.
dc.date.accessioned2025-09-25T11:58:24Z
dc.date.issued2024-08-28
dc.descriptionResearch Article
dc.description.abstractBackground: Bioanalytical methods that enable rapid and high-detail characterization of binding specificities and strengths of protein complexes with low sample consumption are highly desired. The interaction between a camelid single domain antibody (sdAbCSP1) and its target antigen (PfCSP-Cext) was selected as a model system to provide proof-of-principle for the here described methodology. Research design and methods: The structure of the sdAbCSP1 – PfCSP-Cext complex was modeled using Alpha Fold2. The recombinantly expressed proteins, sdAbCSP1, PfCSP-Cext, and the sdAbCSP1 – PfCSP-Cext complex, were subjected to limited proteolysis and mass spectrometric peptide analysis. ITEM MS (Intact Transition Epitope Mapping Mass Spectrometry) and ITC (Isothermal Titration Calorimetry) were applied to determine stoichiometry and binding strength. Results: The paratope of sdAbCSP1 mainly consists of its CDR3 (aa100–118). PfCSP-Cext’s epitope is assembled from its α-helix (aa40–52) and opposing loop (aa83–90). PfCSP-Cext’s GluC cleavage sites E46 and E58 were shielded by complex formation, confirming the predicted epitope. Likewise, sdAbCSP1’s tryptic cleavage sites R105 and R108 were shielded by complex formation, confirming the predicted paratope. ITEM MS determined the 1:1 stoichiometry and the high complex binding strength, exemplified by the gas phase dissociation reaction enthalpy of 50.2 kJ/mol. The in-solution complex dissociation constant is 5 × 10-10 M. Conclusions: Combining AlphaFold2 modeling with mass spectrometry/limited proteolysis generated a trust worthy model for the sdAbCSP1 – PfCSP-Cext complex interaction interface.
dc.description.sponsorshipNone
dc.identifier.citationOpuni, K. F., Ruß, M., Geens, R., De Vocht, L., Van Wielendaele, P., Debuy, C., ... & Glocker, M. O. (2024). Mass spectrometry-complemented molecular modeling predicts the interaction interface for a camelid single-domain antibody targeting the Plasmodium falciparum circumsporozoite protein’s C-terminal domain. Computational and Structural Biotechnology Journal, 23, 3300-3314.
dc.identifier.urihttps://doi.org/10.1016/j.csbj.2024.08.023
dc.identifier.urihttps://ugspace.ug.edu.gh/handle/123456789/44014
dc.language.isoen
dc.publisherComputational and Structural Biotechnology Journal
dc.subjectAlphaFold2
dc.subjectAssembled epitope
dc.subjectCircumsporozoite protein
dc.subjectEpitope mapping
dc.subjectin-silico docking
dc.subjectITEM-TWO analysis
dc.subjectMass spectrometry
dc.subjectParatope mapping
dc.subjectPlasmodium falciparum
dc.titleMass Spectrometry-Complemented Molecular Modeling Predicts The Interaction Interface For A Camelid Single-Domain Antibody Targeting The Plasmodium Falciparum Circumsporozoite Protein’s C-Terminal Domain
dc.typeArticle

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