The Rickettsia actin-based motility effectors RickA and Sca2 contribute differently to cell-to-cell spread and

Cuong J Tran1,2, Zahra Zubair-Nizami1,2, Ingeborg M Langohr3

  • 1Division of Infectious Disease and Vaccinology, School of Public Health, University of California, Berkeley, Berkeley, California, USA.

Mbio
|January 17, 2025
PubMed

Insights

Rickettsia parkeri uses two effectors, RickA and Sca2, for distinct cell-to-cell spread mechanisms. RickA drives severe eschar formation, while Sca2 promotes larger infection foci and dissemination in a mouse model.

Area of Science:

  • Microbiology
  • Cell Biology
  • Pathogen-Host Interactions

Background:

  • Rickettsia parkeri is a tick-borne bacterium causing eschar-associated rickettsiosis.
  • It utilizes actin-based motility for cell-to-cell spread, mediated by RickA or Sca2 effectors.
  • The distinct roles of RickA and Sca2 in spread and pathogenicity were previously unclear.

Purpose of the Study:

  • To elucidate the independent contributions of RickA and Sca2 to R. parkeri cell-to-cell spread in vitro.
  • To investigate the in vivo roles of RickA and Sca2 in the pathogenesis of R. parkeri infection.

Main Methods:

  • Live cell imaging of rickA::Tn and sca2::Tn mutants for in vitro spread analysis.
  • Intradermal infection of Ifnar1-/-; Ifngr1-/- mice with WT, rickA::Tn, and sca2::Tn R. parkeri.
  • Assessment of eschar formation, infection foci, and dissemination in a mouse model.

Main Results:

  • Both RickA and Sca2 mediate distinct modes of R. parkeri cell-to-cell spread.
  • RickA-mediated spread involves longer, more dynamic protrusions compared to Sca2-mediated spread.
  • In vivo, RickA is crucial for severe eschar formation, while Sca2 facilitates larger skin infection foci and dissemination.

Conclusions:

  • RickA and Sca2 drive two independent pathways for R. parkeri cell-to-cell dissemination.
  • These effectors differentially contribute to the severity and spread of R. parkeri infection in a mammalian host.
  • Understanding these mechanisms aids in comprehending pathogen spread and developing therapeutic strategies.

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