Turning Yersinia pathogenesis outside in: subversion of macrophage function by intracellular yersiniae

Céline Pujol1, James B Bliska

  • 1Department of Molecular Genetics and Microbiology, and Center for Infectious Diseases, SUNY at Stony Brook, Stony Brook, NY 11794-5222, USA.

Insights

Pathogenic Yersinia bacteria, including Yersinia pestis, use common virulence factors to infect hosts. These bacteria survive and multiply within macrophages, subverting host defenses for successful infection.

Area of Science:

  • Microbiology
  • Immunology
  • Pathogenesis

Background:

  • Three Yersinia species (Y. pestis, Y. enterocolitica, Y. pseudotuberculosis) cause human diseases like plague and gastroenteritis.
  • Despite different transmission routes and diseases, these Yersinia species share core virulence determinants encoded on the chromosome and a 70-kb plasmid.
  • Yersinia species establish extracellular infections in lymphoid tissues, resisting neutrophil phagocytosis via a type III secretion system that exports Yops and LcrV proteins.

Purpose of the Study:

  • To investigate the role of intracellular survival and multiplication of Yersinia species within macrophages during infection.
  • To understand how Yersinia bacteria subvert macrophage functions from within to promote intracellular replication and pathogenesis.

Main Methods:

  • In vitro experiments demonstrating Yersinia survival and multiplication within macrophage phagosomes.
  • Analysis of bacterial mechanisms for subverting macrophage functions, including inhibition of phagosome acidification and nitric oxide production.

Main Results:

  • All three pathogenic Yersinia species can survive and multiply within macrophages, suggesting macrophages are permissive replication sites.
  • Yersinia species exhibit intracellular mechanisms to evade host immune responses, such as inhibiting phagosome acidification (Y. pseudotuberculosis) and nitric oxide production (Y. pestis, Y. pseudotuberculosis).
  • Extracellular virulence factors are crucial, but intracellular survival within macrophages is also a significant aspect of Yersinia pathogenesis.

Conclusions:

  • Pathogenic Yersinia species employ both extracellular and intracellular strategies to infect mammalian hosts.
  • Understanding the intracellular mechanisms by which Yersinia subverts macrophage functions is critical for a comprehensive understanding of Yersinia pathogenesis.
  • Targeting intracellular survival mechanisms could offer novel therapeutic strategies against Yersinia infections.

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