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Detection of Toxin Translocation into the Host Cytosol by Surface Plasmon Resonance
Published on: January 3, 2012
Genetic Evidence for SecY Translocon-Mediated Import of Two Contact-Dependent Growth Inhibition (CDI) Toxins
Allison M Jones1,2, Petra Virtanen2, Disa Hammarlöf2
1Department of Molecular, Cellular and Developmental Biology, University of California, Santa Barbara, Santa Barbara, California, USA.
Abstract:
The C-terminal (CT) toxin domains of contact-dependent growth inhibition (CDI) CdiA proteins target Gram-negative bacteria and must breach both the outer and inner membranes of target cells to exert growth inhibitory activity. Here, we examine two CdiA-CT toxins that exploit the bacterial general protein secretion machinery after delivery into the periplasm. A Ser281Phe amino acid substitution in transmembrane segment 7 of SecY, the universally conserved channel-forming subunit of the Sec translocon, decreases the cytotoxicity of the membrane depolarizing orphan10 toxin from enterohemorrhagic Escherichia coli EC869. Target cells expressing secY and lacking either PpiD or YfgM, two SecY auxiliary factors, are fully protected from CDI-mediated inhibition either by CdiA-CTo10EC869 or by CdiA-CTGN05224, the latter being an EndoU RNase CdiA toxin from Klebsiella aerogenes GN05224 that has a related cytoplasm entry domain. RNase activity of CdiA-CTGN05224 was reduced in secY target cells and absent in secY ΔppiD or secY ΔyfgM target cells during competition co-cultures. Importantly, an allele-specific mutation in secY (secY ) renders ΔppiD or ΔyfgM target cells specifically resistant to CdiA-CTGN05224 but not to CdiA-CTo10EC869, further suggesting a direct interaction between SecY and the CDI toxins. Our results provide genetic evidence of a unique confluence between the primary cellular export route for unfolded polypeptides and the import pathways of two CDI toxins.IMPORTANCE Many bacterial species interact via direct cell-to-cell contact using CDI systems, which provide a mechanism to inject toxins that inhibit bacterial growth into one another. Here, we find that two CDI toxins, one that depolarizes membranes and another that degrades RNA, exploit the universally conserved SecY translocon machinery used to export proteins for target cell entry. Mutations in genes coding for members of the Sec translocon render cells resistant to these CDI toxins by blocking their movement into and through target cell membranes. This work lays the foundation for understanding how CDI toxins interact with the protein export machinery and has direct relevance to development of new antibiotics that can penetrate bacterial cell envelopes.
Insights
Contact-dependent growth inhibition (CDI) toxins utilize the Sec translocon machinery for bacterial cell entry. Mutations in SecY or its auxiliary factors confer resistance to these toxins, impacting antibiotic development.
Area of Science:
- Bacteriology
- Molecular Biology
- Cell Biology
Background:
- Contact-dependent growth inhibition (CDI) systems mediate bacterial interactions via toxin injection.
- CDI toxins must cross bacterial membranes to inhibit growth.
- The Sec translocon is a universally conserved machinery for protein export.
Purpose of the Study:
- To investigate the mechanism by which CdiA-CT toxins enter target bacterial cells.
- To determine the role of the Sec translocon in CDI toxin import.
- To identify host factors involved in CDI toxin translocation.
Main Methods:
- Genetic analysis of SecY and its auxiliary factors (PpiD, YfgM) in target cells.
- Assessment of cytotoxicity of two distinct CdiA-CT toxins (orphan10 and EndoU RNase).
- Competition co-culture experiments to evaluate toxin activity and resistance.
Main Results:
- Mutations in SecY (Ser281Phe) reduced cytotoxicity of the orphan10 toxin.
- Target cells lacking PpiD or YfgM were protected from both CDI toxins.
- An allele-specific mutation in SecY conferred specific resistance to the RNase toxin, suggesting direct interaction.
Conclusions:
- CDI toxins exploit the Sec translocon machinery for translocation into target cells.
- SecY and its auxiliary factors are crucial for the entry of specific CDI toxins.
- This interaction provides a potential target for novel antibiotic development.
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