Cryo-EM structure of the fully-loaded asymmetric anthrax lethal toxin in its heptameric pre-pore state.

Anthrax toxin is the major virulence factor secreted by Bacillus anthracis, causing high mortality in humans and other mammals. It consists of a membrane translocase, known as protective antigen (PA), that catalyzes the unfolding of its cytotoxic substrates lethal factor (LF) and edema factor (EF),...

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Main Authors: Claudia Antoni, Dennis Quentin, Alexander E Lang, Klaus Aktories, Christos Gatsogiannis, Stefan Raunser
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2020-08-01
Series:PLoS Pathogens
Online Access:https://doi.org/10.1371/journal.ppat.1008530
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spelling doaj-a52dd63056ea47a8930898189a56eab02021-04-21T17:16:08ZengPublic Library of Science (PLoS)PLoS Pathogens1553-73661553-73742020-08-01168e100853010.1371/journal.ppat.1008530Cryo-EM structure of the fully-loaded asymmetric anthrax lethal toxin in its heptameric pre-pore state.Claudia AntoniDennis QuentinAlexander E LangKlaus AktoriesChristos GatsogiannisStefan RaunserAnthrax toxin is the major virulence factor secreted by Bacillus anthracis, causing high mortality in humans and other mammals. It consists of a membrane translocase, known as protective antigen (PA), that catalyzes the unfolding of its cytotoxic substrates lethal factor (LF) and edema factor (EF), followed by translocation into the host cell. Substrate recruitment to the heptameric PA pre-pore and subsequent translocation, however, are not well understood. Here, we report three high-resolution cryo-EM structures of the fully-loaded anthrax lethal toxin in its heptameric pre-pore state, which differ in the position and conformation of LFs. The structures reveal that three LFs interact with the heptameric PA and upon binding change their conformation to form a continuous chain of head-to-tail interactions. As a result of the underlying symmetry mismatch, one LF binding site in PA remains unoccupied. Whereas one LF directly interacts with a part of PA called α-clamp, the others do not interact with this region, indicating an intermediate state between toxin assembly and translocation. Interestingly, the interaction of the N-terminal domain with the α-clamp correlates with a higher flexibility in the C-terminal domain of the protein. Based on our data, we propose a model for toxin assembly, in which the relative position of the N-terminal α-helices in the three LFs determines which factor is translocated first.https://doi.org/10.1371/journal.ppat.1008530
collection DOAJ
language English
format Article
sources DOAJ
author Claudia Antoni
Dennis Quentin
Alexander E Lang
Klaus Aktories
Christos Gatsogiannis
Stefan Raunser
spellingShingle Claudia Antoni
Dennis Quentin
Alexander E Lang
Klaus Aktories
Christos Gatsogiannis
Stefan Raunser
Cryo-EM structure of the fully-loaded asymmetric anthrax lethal toxin in its heptameric pre-pore state.
PLoS Pathogens
author_facet Claudia Antoni
Dennis Quentin
Alexander E Lang
Klaus Aktories
Christos Gatsogiannis
Stefan Raunser
author_sort Claudia Antoni
title Cryo-EM structure of the fully-loaded asymmetric anthrax lethal toxin in its heptameric pre-pore state.
title_short Cryo-EM structure of the fully-loaded asymmetric anthrax lethal toxin in its heptameric pre-pore state.
title_full Cryo-EM structure of the fully-loaded asymmetric anthrax lethal toxin in its heptameric pre-pore state.
title_fullStr Cryo-EM structure of the fully-loaded asymmetric anthrax lethal toxin in its heptameric pre-pore state.
title_full_unstemmed Cryo-EM structure of the fully-loaded asymmetric anthrax lethal toxin in its heptameric pre-pore state.
title_sort cryo-em structure of the fully-loaded asymmetric anthrax lethal toxin in its heptameric pre-pore state.
publisher Public Library of Science (PLoS)
series PLoS Pathogens
issn 1553-7366
1553-7374
publishDate 2020-08-01
description Anthrax toxin is the major virulence factor secreted by Bacillus anthracis, causing high mortality in humans and other mammals. It consists of a membrane translocase, known as protective antigen (PA), that catalyzes the unfolding of its cytotoxic substrates lethal factor (LF) and edema factor (EF), followed by translocation into the host cell. Substrate recruitment to the heptameric PA pre-pore and subsequent translocation, however, are not well understood. Here, we report three high-resolution cryo-EM structures of the fully-loaded anthrax lethal toxin in its heptameric pre-pore state, which differ in the position and conformation of LFs. The structures reveal that three LFs interact with the heptameric PA and upon binding change their conformation to form a continuous chain of head-to-tail interactions. As a result of the underlying symmetry mismatch, one LF binding site in PA remains unoccupied. Whereas one LF directly interacts with a part of PA called α-clamp, the others do not interact with this region, indicating an intermediate state between toxin assembly and translocation. Interestingly, the interaction of the N-terminal domain with the α-clamp correlates with a higher flexibility in the C-terminal domain of the protein. Based on our data, we propose a model for toxin assembly, in which the relative position of the N-terminal α-helices in the three LFs determines which factor is translocated first.
url https://doi.org/10.1371/journal.ppat.1008530
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