Authors
Creutznacher, R., Wallace, L. E., Debski-Antoniak, O. J., Drulyte, I., Hulswit, R. J. G., Beekman, J., van Kuppeveld, F. J. M., Bosch, B.-J., de Haan, C. A. M., Frank, M., Hurdiss, D. L., de Groot, R. J.
Abstract
Human coronavirus HKU1 comprises two distinct serotypes, A and B, whose spike proteins are substantially divergent. Here, we show that spikes from both serotypes preferentially bind 9-O-acetylated 2,8-linked disialosides. Cryo-electron microscopy of the B-type N5 spike reveals a conserved extended binding site in domain S1A that accommodates both the terminal and penultimate sialic acid residues, with interactions involving the penultimate residue substantially enhancing binding. Spike N-glycan processing modulates affinity and linkage selectivity; glycans flanking the binding pocket offer a plausible structural basis for these effects. In contrast to the HKU1-A spike, which adopts open S1B-up conformations upon ligand binding, the N5 apo structure showed that the ligand-binding site was already formed and the e1 relay element register-shifted in most protomers. Nevertheless, we detected neither spontaneous opening nor a transition to an S1B-up state following ligand binding. These findings, obtained with a minimally modified ectodomain, differ from recent reports of ligand-independent opening. Molecular dynamics simulations indicated that membrane-embedded GT3, but not GD3, presents its glycan chain in a geometry compatible with S1A-mediated engagement. Concordantly, in human nasal epithelial cultures cell surface GT3-like O-acetylated trisialoside glycotopes were detected in ciliated cells, linking their cell-type-specific presentation to HKU1 tropism.
Preprint server:
bioRxiv
The authors list and abstract were imported from bioRxiv on 06 Aug 2026.
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