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Updated: May 30, 2026

Analysis of Yersinia enterocolitica Effector Translocation into Host Cells Using Beta-lactamase Effector Fusions
Published on: October 13, 2015
Type III secretion system-dependent translocation of ectopically expressed Yop effectors into macrophages by
Yue Zhang1, Galina Romanov, James B Bliska
1Center for Infectious Diseases, SUNY Stony Brook, CMM235, Stony Brook, NY 11794-5222, USA. yzhang@ms.cc.sunysb.edu
Abstract:
Yersinia pseudotuberculosis is a Gram-negative bacterial pathogen. Virulence in Y. pseudotuberculosis requires the plasmid-encoded Ysc type III secretion system (T3SS), which functions to translocate a set of effectors called Yops into infected host cells. The effectors function to antagonize phagocytosis (e.g., YopH) or to induce apoptosis (YopJ) in macrophages infected with Y. pseudotuberculosis. Additionally, when antiphagocytosis is incomplete and Y. pseudotuberculosis is internalized by macrophages, the bacterium can survive in phagosomes. Previous studies have shown that delivery of effectors into host cells occurs efficiently when Yersinia is extracellular. However, it is not clear whether the T3SS can be utilized by intracellular Y. pseudotuberculosis to translocate Yops. This possibility was investigated here using Y. pseudotuberculosis strains that express YopJ or YopH under the control of an inducible promoter. Bone marrow-derived murine macrophages were infected with these strains under conditions that prevented the survival of extracellular bacteria. Effector translocation was detected by measuring apoptosis or the activities of Yop-β-lactamase fusion proteins. Results showed that macrophages underwent apoptosis when YopJ expression was induced prior to phagocytosis, confirming that delivery of this effector prior to or during uptake is sufficient to cause cell death. However, macrophages also underwent apoptosis when YopJ was ectopically expressed after phagocytosis; furthermore, expression of the translocator YopB from intracellular bacteria also resulted in increased cell death. Analysis by microscopy showed that translocation of ectopically expressed YopH- or YopJ-β-lactamase fusions could be correlated with the presence of viable Y. pseudotuberculosis in macrophages. Collectively, our results suggest that the Ysc T3SS of Y. pseudotuberculosis can function within macrophage phagosomes to translocate Yops into the host cytosol.
Insights
Yersinia pseudotuberculosis uses its type III secretion system (T3SS) to inject toxins (Yops) into host cells. This study shows the T3SS functions even when bacteria are inside macrophages, delivering Yops to cause cell death.
Area of Science:
- Microbiology
- Immunology
- Bacterial Pathogenesis
Background:
- Yersinia pseudotuberculosis is a Gram-negative pathogen.
- Virulence depends on the Ysc type III secretion system (T3SS) for injecting Yop effectors into host cells.
- Yop effectors antagonize phagocytosis or induce apoptosis, but T3SS function during intracellular infection was unclear.
Purpose of the Study:
- To investigate if the Ysc T3SS can translocate Yop effectors from intracellular Yersinia pseudotuberculosis into host cells.
- To determine if the T3SS functions within macrophage phagosomes.
Main Methods:
- Used Y. pseudotuberculosis strains with inducible YopJ or YopH expression.
- Infected bone marrow-derived murine macrophages under conditions preventing extracellular bacterial survival.
- Detected effector translocation via apoptosis assays and Yop-β-lactamase fusion protein activity.
Main Results:
- Macrophages underwent apoptosis when YopJ was expressed before or after phagocytosis.
- Expression of the translocator YopB by intracellular bacteria increased host cell death.
- Microscopy confirmed Yop translocation correlated with intracellular Y. pseudotuberculosis viability.
Conclusions:
- The Ysc T3SS of Y. pseudotuberculosis is functional within macrophage phagosomes.
- Intracellular bacteria can translocate Yop effectors into the host cytosol, contributing to virulence.
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