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Dynamic motion of bacterial surface pili based on structural analyses of covalently linked complexes formed by tip and shaft pili proteins from Clostridium perfringens.

Created on 15 Sep 2026

Authors

Yasuhiro Nonaka, Eiji Tamai, Hiroshi Sekiya, Shigehiro Kamitori

Published in

The FEBS journal. Sep 15, 2026. Epub Sep 15, 2026.

Abstract

The pathogenesis and infectivity of Gram-positive bacteria are mediated by many surface proteins covalently attached to the bacterial cell wall. Pili are types of surface appendages that play important roles in the initial adhesion of bacterial cells to host tissues and bacterial colonization. The Gram-positive bacterium Clostridium perfringens (C. perfringens), one of the pathogenic clostridial species causing gas gangrene and food poisoning, has sortase-mediated pili composed of shaft/major pilin A (CppA) and tip/minor pilin B (CppB). The pilus shaft is formed by covalent polymerization of CppA, and CppB is covalently attached to the tip of the shaft involved in adhesion to the host cell. The formation of covalent bonds between CppB and CppA, as well as between CppA and CppA, is catalyzed by class C sortase (CpSrtC), a member of the cysteine transpeptidase family. Since pili consistently have CppB at their tip, CpSrtC is the enzyme that preferentially catalyzes the attachment of CppB (tip) to CppA (shaft) rather than polymerization of CppAs by an unknown mechanism. We determined the structures of complexes formed by covalently linking CppB and CppA by X-ray crystallography and cryo-EM analysis. The complexes have an elongated structure in which β-sandwich folded domains are sequentially arranged, and an amide bond between Thr688 of CppB and Lys174 of CppA was clearly identified. The determined structures allowed us to construct a three-dimensional structure model with dynamic motion of C. perfringens pili, and proposed new insights into the mechanism by which CppB is preferentially attached to CppA.

PMID:
42740687
Bibliographic data and abstract were imported from PubMed on 15 Sep 2026.

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