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A dramatic protein fold switch powers a bactericidal nanomachine

He, Y.; Li, A. S. C.; Cai, X.; Tachiyama, S.; Kumar, R.; Chakravarty, D.; Porter, L.; Liu, J.; Davidson, A. R.; Zhou, Z. H.

2026-01-29 microbiology
10.64898/2026.01.28.702463 bioRxiv
Show abstract

Fold switching, where a protein region interconverts between entirely distinct three-dimensional structures, is emerging as vital for certain protein functions. Here, we report a remarkable example in the F7 pyocin, a phage tail-like bactericidal nanomachine. Cryogenic electron microscopy and tomography reveal that a 163-residue segment of the central tail fiber undergoes a dramatic transition--from a trimeric -helical coiled-coil to a triangular {beta}-prism--upon binding to the bacterial cell surface. This massive fold switch remodels the tail tip, ejects the internal tape measure protein, and drives membrane puncture. Site-directed mutations that selectively destabilize the {beta}-prism conformation completely abolish bactericidal activity without impairing particle assembly, implying that the energy released during this transition powers penetration. AlphaFold-based analyses further predict similar large-scale coiled-coil to {beta}-prism switches in diverse non-contractile phage tails. This discovery reveals a sophisticated, ATP-independent strategy for microbial warfare and opens exciting possibilities for engineering next-generation bacteriocins to combat multidrug-resistant pathogens.

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