RNAi screen reveals a role for PACSIN2 and caveolins during bacterial cell-to-cell spread

Allen G Sanderlin1, Cassandra Vondrak1, Arianna J Scricco1

  • 1Department of Biology, Massachusetts Institute of Technology, Cambridge, MA 02139.

Insights

Listeria monocytogenes hijacks host cell communication pathways for spread. Proteins like caveolins and PACSIN2 are crucial for bacterial cell-to-cell movement and protrusion resolution.

Area of Science:

  • Microbiology
  • Cell Biology
  • Pathogenesis

Background:

  • Listeria monocytogenes spreads between host cells via intercellular trafficking.
  • Eukaryotic cells utilize intercellular communication pathways for component exchange.
  • Host protein hijacking is a potential bacterial virulence strategy.

Purpose of the Study:

  • To investigate if Listeria monocytogenes coopts host intercellular communication proteins for cell-to-cell spread.
  • To identify specific host genes and proteins involved in bacterial spread.

Main Methods:

  • Focused RNA interference screen to identify host genes essential for L. monocytogenes spread.
  • Analysis of host protein localization and function during bacterial spread.

Main Results:

  • Identified 22 host genes critical for L. monocytogenes spread.
  • Caveolins (CAV1, CAV2) and PACSIN2 promote bacterial protrusion engulfment.
  • PACSIN2 specifically localizes to protrusions during bacterial spread.

Conclusions:

  • Listeria monocytogenes exploits host intercellular communication pathways.
  • Specific host trafficking and membrane remodeling proteins are key for bacterial spread and protrusion resolution.

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