Helical ultrastructure of the L-ENA spore aggregation factor of a Bacillus paranthracis foodborne outbreak strain
In pathogenic Bacillota, spores can form an infectious particle and can take up a central role in the environmental persistence and dissemination of disease. A poorly understood aspect of spore-mediated infection is the fibrous structures or ‘endospore appendages’ (ENAs) that have been seen to decor...
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Veröffentlicht in: | Nature communications 2024-08, Vol.15 (1), p.7514-12, Article 7514 |
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Sprache: | eng |
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Zusammenfassung: | In pathogenic Bacillota, spores can form an infectious particle and can take up a central role in the environmental persistence and dissemination of disease. A poorly understood aspect of spore-mediated infection is the fibrous structures or ‘endospore appendages’ (ENAs) that have been seen to decorate the spores of pathogenic Bacilli and Clostridia. Current methodological approaches are opening a window on these long enigmatic structures. Using cryoID, Alphafold modelling and genetic approaches we identify a sub-class of robust ENAs in a
Bacillus paranthracis
foodborne outbreak strain. We demonstrate that L-ENA are encoded by a rare three-gene cluster (
ena3
) that contains all components for the self-assembly of ladder-like protein nanofibers of stacked heptameric rings, their anchoring to the exosporium, and their termination in a trimeric ‘ruffle’ made of a complement C1Q-like BclA paralogue. The role of ENA fibers in spore-spore interaction and the distribution of L-ENA operon as mobile genetic elements in
B. cereus
s.l. strains suggest that L-ENA fibers may increase the survival, spread and virulence of these strains.
The pathogenic
Bacillus paranthracis
NVH 0075-95 produces pili-like (L-ENA) structures on its spore surface to mediate spore-spore contacts. Using cryoEM, a molecular model for the fiber architecture and the adhesive tip fibrillum is proposed. |
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ISSN: | 2041-1723 2041-1723 |
DOI: | 10.1038/s41467-024-51804-w |