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Published on: October 1, 2012
A syringe-like injection mechanism in Photorhabdus luminescens toxins
Christos Gatsogiannis1, Alexander E Lang, Dominic Meusch
1Department of Physical Biochemistry, Max Planck Institute of Molecular Physiology, 44227 Dortmund, Germany.
Abstract:
Photorhabdus luminescens is an insect pathogenic bacterium that is symbiotic with entomopathogenic nematodes. On invasion of insect larvae, P. luminescens is released from the nematodes and kills the insect through the action of a variety of virulence factors including large tripartite ABC-type toxin complexes (Tcs). Tcs are typically composed of TcA, TcB and TcC proteins and are biologically active only when complete. Functioning as ADP-ribosyltransferases, TcC proteins were identified as the actual functional components that induce actin-clustering, defects in phagocytosis and cell death. However, little is known about the translocation of TcC into the cell by the TcA and TcB components. Here we show that TcA in P. luminescens (TcdA1) forms a transmembrane pore and report its structure in the prepore and pore state determined by cryoelectron microscopy. We find that the TcdA1 prepore assembles as a pentamer forming an α-helical, vuvuzela-shaped channel less than 1.5 nanometres in diameter surrounded by a large outer shell. Membrane insertion is triggered not only at low pH as expected, but also at high pH, explaining Tc action directly through the midgut of insects. Comparisons with structures of the TcdA1 pore inserted into a membrane and in complex with TcdB2 and TccC3 reveal large conformational changes during membrane insertion, suggesting a novel syringe-like mechanism of protein translocation. Our results demonstrate how ABC-type toxin complexes bridge a membrane to insert their lethal components into the cytoplasm of the host cell. We believe that the proposed mechanism is characteristic of the whole ABC-type toxin family. This explanation of toxin translocation is a step towards understanding the host-pathogen interaction and the complex life cycle of P. luminescens and other pathogens, including human pathogenic bacteria, and serves as a strong foundation for the development of biopesticides.
Insights
Photorhabdus luminescens uses ABC-type toxin complexes to kill insects. Researchers determined the structure of a key toxin component, revealing a novel mechanism for delivering lethal proteins into host cells.
Area of Science:
- Microbiology
- Structural Biology
- Biochemistry
Background:
- Photorhabdus luminescens is an insect pathogen symbiotic with nematodes.
- It utilizes large tripartite ABC-type toxin complexes (Tcs) for virulence.
- TcC proteins are the active components, functioning as ADP-ribosyltransferases.
Purpose of the Study:
- To elucidate the mechanism of TcC translocation into host cells by TcA and TcB.
- To determine the structure of the TcdA1 component of the Tc complex.
- To understand the role of pH in Tc complex membrane insertion.
Main Methods:
- Cryo-electron microscopy (cryo-EM) was used to determine the structure of TcdA1 in prepore and pore states.
- Structural comparisons were made between TcdA1 in different states and in complex with other Tc components.
- The effect of pH on membrane insertion was investigated.
Main Results:
- TcdA1 forms a pentameric transmembrane pore with a narrow α-helical channel.
- Membrane insertion is triggered by both low and high pH.
- Conformational changes suggest a syringe-like mechanism for protein translocation.
Conclusions:
- The study reveals a novel mechanism for ABC-type toxin translocation across membranes.
- This provides insight into the host-pathogen interactions of P. luminescens.
- The findings support the development of novel biopesticides.
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