Autophagy Induction by a Small Molecule Inhibits Salmonella Survival in Macrophages and Mice

Toni A Nagy1, Joaquin L J Quintana2, Abigail L Reens2

  • 1Department of Molecular, Cellular and Developmental Biology, University of Colorado, Boulder, CO 80309 toni.nagy@colorado.edu.

Insights

A novel small molecule, D61, enhances autophagy in macrophages to reduce Salmonella bacterial load. This compound shows therapeutic potential by targeting bacterial degradation pathways in both cell cultures and infected mice.

Area of Science:

  • Microbiology and Immunology
  • Cellular Biology
  • Chemical Genetics

Background:

  • Salmonella enterica causes systemic infections in macrophages and gastroenteritis in epithelial cells.
  • Understanding host pathways crucial for Salmonella survival in different cell types is limited.
  • Chemical genetics offers a method to identify compounds modulating host-pathogen interactions.

Purpose of the Study:

  • To identify small molecules that perturb Salmonella-host interactions using a chemical genetics approach.
  • To investigate the mechanism of action of identified compounds, specifically their effect on bacterial load in different cell types and in vivo.

Main Methods:

  • Chemical genetics screen to identify modulators of Salmonella-host interactions.
  • Cell-based assays using macrophages and epithelial cells to assess bacterial load.
  • Analysis of autophagy markers (LC3II) and associated proteins (VPS34, ATG5).
  • Murine infection models to evaluate efficacy in vivo (spleen and liver bacterial load).

Main Results:

  • A small molecule, D61, was identified that specifically reduces Salmonella load in macrophages, not epithelial cells or rich medium.
  • D61 induces LC3II aggregation near Salmonella in macrophages, indicating activation of the autophagy pathway.
  • D61's antibacterial activity in macrophages depends on the VPS34 complex and ATG5, and it reduces Salmonella load in infected mouse spleen and liver.
  • D61 exhibits synergistic antibacterial activity with chloramphenicol in macrophages, largely independent of chloramphenicol's autophagy-stimulating effects.

Conclusions:

  • The small molecule D61 exhibits potent anti-Salmonella activity specifically within macrophages by promoting bacterial degradation via autophagy.
  • D61 demonstrates therapeutic potential by reducing bacterial colonization in host tissues, highlighting autophagy stimulation as a viable strategy against Salmonella infection.
  • This study showcases the utility of chemical genetics in dissecting host-pathogen interactions and identifying novel therapeutic avenues.