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.

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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