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Quantifying Yersinia pseudotuberculosis Type III Secretion System Activity Following Iron Starvation and Anaerobic Growth
Published on: May 31, 2024
Chromosomally-Encoded Yersinia pestis Type III Secretion Effector Proteins Promote Infection in Cells and in Mice
Sara Schesser Bartra1, Cherish Lorica1,2, Lianfen Qian3
1Department of Microbiology and Immunology, University of Miami Miller School of Medicine, Miami, FL, United States.
Abstract:
Yersinia pestis, the causative agent of plague, possesses a number of virulence mechanisms that allows it to survive and proliferate during its interaction with the host. To discover additional infection-specific Y. pestis factors, a transposon site hybridization (TraSH)-based genome-wide screen was employed to identify genomic regions required for its survival during cellular infection. In addition to several well-characterized infection-specific genes, this screen identified three chromosomal genes (y3397, y3399, and y3400), located in an apparent operon, that promoted successful infection. Each of these genes is predicted to encode a leucine-rich repeat family protein with or without an associated ubiquitin E3 ligase domain. These genes were designated Yersinia leucine-rich repeat gene A (ylrA), B (ylrB), and C (ylrC). Engineered strains with deletions of y3397 (ylrC), y3399 (ylrB), or y3400 (ylrA), exhibited infection defects both in cultured cells and in the mouse. C-terminal FLAG-tagged YlrA, YlrB, and YlrC were secreted by Y. pestis in the absence but not the presence of extracellular calcium and deletions of the DNA sequences encoding the predicted N-terminal type III secretion signals of YlrA, YlrB, and YlrC prevented their secretion, indicating that these proteins are substrates of the type III secretion system (T3SS). Further strengthening the connection with the T3SS, YlrB was readily translocated into HeLa cells and expression of the YlrA and YlrC proteins in yeast inhibited yeast growth, indicating that these proteins may function as anti-host T3S effector proteins.
Insights
Yersinia pestis uses novel leucine-rich repeat proteins (YlrA, YlrB, YlrC) for infection. These proteins are secreted via the type III secretion system and act as anti-host effectors, crucial for plague virulence.
Area of Science:
- Microbiology
- Molecular Biology
- Pathogen-Host Interactions
Background:
- Yersinia pestis, the plague bacterium, employs various virulence factors for host survival and proliferation.
- Identifying novel infection-specific factors is crucial for understanding plague pathogenesis.
Purpose of the Study:
- To identify novel Yersinia pestis genes essential for survival during cellular infection using a genome-wide screen.
- To characterize the function and secretion mechanism of newly identified virulence factors.
Main Methods:
- Transposon site hybridization (TraSH)-based genome-wide screen to identify essential genes.
- Gene deletion studies in Yersinia pestis to assess infection defects.
- Analysis of protein secretion via the type III secretion system (T3SS).
Main Results:
- Three novel genes (y3397, y3399, y3400), designated ylrA, ylrB, and ylrC, were identified as essential for Y. pestis infection.
- YlrA, YlrB, and YlrC are leucine-rich repeat proteins secreted by the T3SS in a calcium-dependent manner.
- YlrB translocation into host cells and YlrA/YlrC inhibition of yeast growth suggest anti-host effector functions.
Conclusions:
- The YlrA, YlrB, and YlrC proteins are novel T3SS effector proteins critical for Yersinia pestis virulence.
- These findings expand our understanding of plague pathogenesis and potential therapeutic targets.
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