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The Yersinia pseudotuberculosis and Yersinia pestis toxin complex is active against cultured mammalian cells
Michelle C Hares1,2, Stewart J Hinchliffe3,1, Philippa C R Strong3
1University of Exeter in Cornwall, Department of Biosciences, Tremough Campus, Penryn, Cornwall TR10 9EZ, UK.
Abstract:
The toxin complex (Tc) genes were first identified in the insect pathogen Photorhabdus luminescens and encode approximately 1 MDa protein complexes which are toxic to insect pests. Subsequent genome sequencing projects have revealed the presence of tc orthologues in a range of bacterial pathogens known to be associated with insects. Interestingly, members of the mammalian-pathogenic yersiniae have also been shown to encode Tc orthologues. Studies in Yersinia enterocolitica have shown that divergent tc loci either encode insect-active toxins or play a role in colonization of the gut in gastroenteritis models of rats. So far little is known about the activity of the Tc proteins in the other mammalian-pathogenic yersiniae. Here we present work to suggest that Tc proteins in Yersinia pseudotuberculosis and Yersinia pestis are not insecticidal toxins but have evolved for mammalian pathogenicity. We show that Tc is secreted by Y. pseudotuberculosis strain IP32953 during growth in media at 28 degrees C and 37 degrees C. We also demonstrate that oral toxicity of strain IP32953 to Manduca sexta larvae is not due to Tc expression and that lysates of Escherichia coli BL21 expressing the Yersinia Tc proteins are not toxic to Sf9 insect cells but are toxic to cultured mammalian cell lines. Cell lysates of E. coli BL21 expressing the Y. pseudotuberculosis Tc proteins caused actin ruffles, vacuoles and multi-nucleation in cultured human gut cells (Caco-2); similar morphology was observed after application of a lysate of E. coli BL21 expressing the Y. pestis Tc proteins to mouse fibroblast NIH3T3 cells, but not Caco-2 cells. Finally, transient expression of the individual Tc proteins in Caco-2 and NIH3T3 cell lines reproduced the actin and nuclear rearrangement observed with the topical applications. Together these results add weight to the growing hypothesis that the Tc proteins in Y. pseudotuberculosis and Y. pestis have been adapted for mammalian pathogenicity. We further conclude that Tc proteins from Y. pseudotuberculosis and Y. pestis display differential mammalian cell specificity in their toxicity.
Insights
Toxin complex (Tc) proteins in Yersinia pseudotuberculosis and Yersinia pestis are not insecticidal but adapted for mammalian pathogenicity. These Tc proteins exhibit differential toxicity specificities towards mammalian cells.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Molecular Biology
Background:
- Toxin complex (Tc) genes, initially found in insect pathogens, encode large protein complexes toxic to insects.
- Tc orthologues are present in various insect-associated bacterial pathogens and mammalian-pathogenic Yersinia species.
- The function of Tc proteins in Yersinia species beyond Yersinia enterocolitica remains largely unknown.
Purpose of the Study:
- To investigate the role and activity of Toxin complex (Tc) proteins in mammalian-pathogenic Yersinia pseudotuberculosis and Yersinia pestis.
- To determine if Tc proteins in these species function as insecticidal toxins or have adapted for mammalian pathogenicity.
- To characterize the cellular effects and specificity of Yersinia Tc proteins on mammalian cells.
Main Methods:
- Detection of Tc protein secretion by Yersinia pseudotuberculosis at different temperatures.
- Assessment of oral toxicity of Yersinia pseudotuberculosis to insect larvae (Manduca sexta).
- Evaluation of Tc protein toxicity on insect (Sf9) and mammalian (Caco-2, NIH3T3) cell lines using bacterial lysates and transient expression.
Main Results:
- Yersinia Tc proteins are secreted by Y. pseudotuberculosis at both 28°C and 37°C.
- Y. pseudotuberculosis oral toxicity to insect larvae is not mediated by Tc expression.
- Yersinia Tc proteins are toxic to mammalian cell lines, inducing actin ruffling, vacuolation, and multi-nucleation, with differential cell specificity observed between Y. pseudotuberculosis and Y. pestis Tc proteins.
Conclusions:
- Tc proteins in Y. pseudotuberculosis and Y. pestis have evolved for mammalian pathogenicity rather than insecticidal activity.
- Yersinia Tc proteins exhibit distinct toxicological profiles and specificities towards different mammalian cell types.
- These findings support the hypothesis of Tc protein adaptation for virulence in mammalian hosts.
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