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Analysis of Yersinia enterocolitica Effector Translocation into Host Cells Using Beta-lactamase Effector Fusions
Published on: October 13, 2015
Adhesins of human pathogens from the genus Yersinia
1Institute of Biotechnology, Viikinkaari 1, University of Helsinki, FIN-00014, Helsinki, Finland. jack.leo@helsinki.fi
Abstract:
Bacteria of the Gram-negative genus Yersinia are environmentally ubiquitous. Three species are of medical importance: the intestinal pathogens Y. enterocolitica and Y. pseudotuberculosis, and the plague bacillus Y. pestis. The two former species, spread by contaminated food or water, cause a range of gastrointestinal symptoms and, rarely, sepsis. On occasion, the primary infection is followed by autoimmune sequelae such as reactive arthritis. Plague is a systemic disease with high mortality. It is a zoonosis spread by fleas, or more rarely by droplets from individuals suffering from pneumonic plague. Y. pestis is one of the most virulent of bacteria, and recent findings of antibiotic-resistant strains together with its potential use as a bioweapon have increased interest in the species. In addition to being significant pathogens in their own right, the yersiniae have been used as model systems for a number of aspects of pathogenicity. This chapter reviews the molecular mechanisms of adhesion in yersiniae. The enteropathogenic species share three adhesins: invasin, YadA and Ail. Invasin is the first adhesin required for enteric infection; it binds to β(1) integrins on microfold cells in the distal ileum, leading to the ingestion of the bacteria and allows them to cross the intestinal epithelium. YadA is the major adhesin in host tissues. It is a multifunctional protein, conferring adherence to cells and extracellular matrix components, serum and phagocytosis resistance, and the ability to autoagglutinate. Ail has a minor role in adhesion and serum resistance. Y. pestis lacks both invasin and YadA, but expresses several other adhesins. These include the pH 6 antigen and autotransporter adhesins. Also the plasminogen activator of Y. pestis can mediate adherence to host cells. Although the adhesins of the pathogenic yersiniae have been studied extensively, their exact roles in the biology of infection remain elusive.
Insights
Yersinia bacteria, including Y. enterocolitica, Y. pseudotuberculosis, and Y. pestis, use adhesins like invasin and YadA for infection. Understanding these bacterial adhesion mechanisms is crucial for combating Yersinia-related diseases.
Area of Science:
- Microbiology
- Pathogen Biology
- Molecular Mechanisms
Background:
- Yersinia bacteria are ubiquitous Gram-negative pathogens with significant medical importance.
- Key species include Y. enterocolitica, Y. pseudotuberculosis, and the highly virulent Y. pestis, responsible for gastrointestinal diseases and plague.
- Yersinia species serve as crucial model systems for studying pathogenicity.
Purpose of the Study:
- To review the molecular mechanisms of bacterial adhesion in Yersinia species.
- To elucidate the roles of specific adhesins in the pathogenesis of Yersinia infections.
- To highlight the differences and similarities in adhesion strategies among Yersinia species.
Main Methods:
- Review of existing literature on Yersinia adhesins and their functions.
- Analysis of the molecular structures and binding properties of adhesins like invasin, YadA, Ail, pH 6 antigen, and plasminogen activator.
- Comparative examination of adhesin expression and roles in different Yersinia species.
Main Results:
- Enteropathogenic Yersinia species utilize invasin, YadA, and Ail for adhesion and invasion.
- Invasin mediates bacterial entry via beta(1) integrins, while YadA provides broad adherence, serum resistance, and autoagglutination.
- Y. pestis lacks invasin and YadA but employs other adhesins, including the pH 6 antigen and plasminogen activator, for host cell adherence.
Conclusions:
- Bacterial adhesins are critical for Yersinia pathogenesis, mediating initial host cell interactions and invasion.
- The specific adhesins employed vary between Yersinia species, reflecting distinct infection strategies.
- Further research is needed to fully understand the precise roles of these adhesins in the complex biology of Yersinia infections.
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