Core-dependent sheath architecture dictates Leptospira endoflagellar curvature
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ABSTRACT: Spirochete bacteria include some of the most invasive human pathogens, causing diseases such as syphilis, Lyme disease, and leptospirosis that collectively affect millions of people annually. Their unique ability to penetrate tissues and cross biological barriers depends on periplasmic flagellar filaments that transmit rotational force while maintaining precise curvature to deform the cell body [1, 2]. How these filaments achieve the mechanical properties required to drive motility has remained unclear, owing to the lack of complete high-resolution structures [3, 4]. Here we present atomic structures of complete endoflagellar filaments from Leptospira species, integrating cryo-electron microscopy, mass spectrometry, and X-ray crystallography. We show that these filaments possess unprecedented complexity, with more than ten distinct proteins asymmetrically sheathing the flagellin core. The isoform identity of the core flagellin is coupled to sheath organization, together dictating filament curvature. This architectural plasticity is critical for motility in viscous environments and during infection. The conservation of several core and sheath proteins across the phylum suggests that Spirochetes exploit modular core-sheath coupling to optimize motility across environments of varying viscosity, a capability critical for both environmental adaptation and tissue invasion by pathogens.
INSTRUMENT(S):
ORGANISM(S): Leptospira Biflexa
SUBMITTER:
Martial Rey
LAB HEAD: Julia Chamot-Rooke
PROVIDER: PXD073467 | Pride | 2026-07-14
REPOSITORIES: Pride
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