Health & Medicinearticle2026-08-13

Conserved dimerization architecture in C‐type lectins from virus‐vector mosquitoes

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Abstract

Abstract C-type lectins (CTLs) play key roles in innate immunity and microbial carbohydrate recognition. In the disease vector mosquito Aedes aegypti , the CTLD-S family comprises 34 soluble CTLs whose members are implicated in flavivirus dissemination and microbial homeostasis, yet their structure and organization remain uncharacterized. Here, we combine X-ray crystallography, small-angle X-ray scattering (SAXS), molecular dynamics, and machine learning–based structure prediction to characterize CTLs in Aedes aegypti . We determined the crystal structures of four representative CTLD-S proteins: mosGCTL-1, -3, -6, and -20. All crystals featured mosGCTL proteins in an identical homodimer arrangement, positioning both carbohydrate-binding sites on the same molecular face. Dimerization was confirmed in solution and AlphaFold predictions across the entire CTLD-S family indicated that dimer formation may be a unifying feature of mosquito CTLD-S proteins. For one mosGCTL structure, paucimannose glycans bound at a Ca 2+ -dependent site, demonstrating bi-dentate glycan-binding through one dimer. Finally, machine learning based predictions indicated hundreds of possible CTLD-S heterodimers may be viable, with wide-ranging implications for preferred glycan binding through one dimer. Our findings reveal a conserved dimeric arrangement among mosquito lectins that may underpin carbohydrate recognition relevant to vector-pathogen interactions.

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View paper (DOI)Open access versionOpenAlexFEBS JournalPublished 2026-08-13

Authors: M. Bertinelli, Rupesh Balaji Jayachandran, Jack D. Whitehead, Cédric Leyrat, Annabel V Clanner, Guido C. Paesen, Max Renner

Institutions: University of Oxford, Inserm, Centre National de la Recherche Scientifique, Umeå University, Centre for Human Genetics, Centre for Biomedical Engineering and Physics, Institut de Génomique Fonctionnelle