Step-by-step maturation mechanism of the binary toxin pore revealed by cryo-EM analysis

Membrane pore-forming proteins (PFPs) form ring-shaped membrane-translocating oligomers on membranes, contributing to infection, immunity, and cell death functions. Binary toxins produced by some bacteria consist of an enzymatic component that acts as a toxin and a membrane-binding component that forms a pore that delivers the enzymatic component into target cells. Cryoelectron microscopy (cryo-EM) has advanced our understanding of these translocation mechanisms by revealing several binary toxin complexes’ structures. However, the mechanisms underlying the initial pore formation remain unclear. We determined the structures of several oligomeric forms of the membrane-binding component Ib of the iota toxin from Clostridium perfringens at various stages of pore formation. Structural comparisons revealed how the symmetrically arranged soluble oligomer (prepore) asymmetrically matures into a transmembrane oligomer (pore). These findings enhance our understanding of mechanisms of PFP and provide a structural basis for developing nanodevices using membrane pores.

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Journal
Proceedings of the National Academy of Sciences
Published
2026-09-28
DOI
https://doi.org/10.1073/pnas.2627537123
Primary Topic
Toxin Mechanisms and Immunotoxins
Type
article
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article

Step-by-step maturation mechanism of the binary toxin pore revealed by cryo-EM analysis

Toru Yoshida, Takeshi Noda, Yuki Ninomiya, Yukihiko Sugita et al.
Proceedings of the National Academy of Sciences
Toxin Mechanisms and Immunotoxins
article

Step-by-step maturation mechanism of the binary toxin pore revealed by cryo-EM analysis

Toru Yoshida, Takeshi Noda, Yuki Ninomiya, Yukihiko Sugita, Hideaki Tsuge, Tomohito Yamada, Ren Nakanishi
article en

Abstract

Membrane pore-forming proteins (PFPs) form ring-shaped membrane-translocating oligomers on membranes, contributing to infection, immunity, and cell death functions. Binary toxins produced by some bacteria consist of an enzymatic component that acts as a toxin and a membrane-binding component that forms a pore that delivers the enzymatic component into target cells. Cryoelectron microscopy (cryo-EM) has advanced our understanding of these translocation mechanisms by revealing several binary toxin complexes’ structures. However, the mechanisms underlying the initial pore formation remain unclear. We determined the structures of several oligomeric forms of the membrane-binding component Ib of the iota toxin from Clostridium perfringens at various stages of pore formation. Structural comparisons revealed how the symmetrically arranged soluble oligomer (prepore) asymmetrically matures into a transmembrane oligomer (pore). These findings enhance our understanding of mechanisms of PFP and provide a structural basis for developing nanodevices using membrane pores.

Proceedings of the National Academy of SciencesVol. 123(40)
Kyoto Sangyo University (JP), Kyoto University (JP), Japan Women's University (JP), Institute for Life and Medical Sciences, Kyoto University (JP)
Openalex Percentile: Top 19%
Toxin Mechanisms and Immunotoxins
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Step-by-step maturation mechanism of the binary toxin pore revealed by cryo-EM analysis — Toru Yoshida, Takeshi Noda, et al. · Proceedings of the National Academy of Sciences (2026) | TGRS Research Map | TGRS