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Updated: Jun 10, 2026

Quantification of Cytosolic vs. Vacuolar Salmonella in Primary Macrophages by Differential Permeabilization
Published on: July 28, 2015
The virulence protein SopD2 regulates membrane dynamics of Salmonella-containing vacuoles
Nina Schroeder1, Thomas Henry, Chantal de Chastellier
1Centre d'Immunologie de Marseille-Luminy, CNRS UMR 6102, INSERM U631, Université de la Méditerranée, Parc Scientifique de Luminy, Marseille, France.
Abstract:
Salmonella enterica serovar Typhimurium is a Gram-negative bacterial pathogen causing gastroenteritis in humans and a systemic typhoid-like illness in mice. The capacity of Salmonella to cause diseases relies on the establishment of its intracellular replication niche, a membrane-bound compartment named the Salmonella-containing vacuole (SCV). This requires the translocation of bacterial effector proteins into the host cell by type three secretion systems. Among these effectors, SifA is required for the SCV stability, the formation of Salmonella-induced filaments (SIFs) and plays an important role in the virulence of Salmonella. Here we show that the effector SopD2 is responsible for the SCV instability that triggers the cytoplasmic release of a sifA(-) mutant. Deletion of sopD2 also rescued intra-macrophagic replication and increased virulence of sifA(-) mutants in mice. Membrane tubular structures that extend from the SCV are the hallmark of Salmonella-infected cells. Until now, these unique structures have not been observed in the absence of SifA. The deletion of sopD2 in a sifA(-) mutant strain re-established membrane trafficking from the SCV and led to the formation of new membrane tubular structures, the formation of which is dependent on other Salmonella effector(s). Taken together, our data demonstrate that SopD2 inhibits the vesicular transport and the formation of tubules that extend outward from the SCV and thereby contributes to the sifA(-) associated phenotypes. These results also highlight the antagonistic roles played by SopD2 and SifA in the membrane dynamics of the vacuole, and the complex actions of SopD2, SifA, PipB2 and other unidentified effector(s) in the biogenesis and maintenance of the Salmonella replicative niche.
Insights
Salmonella Typhimurium
Area of Science:
- Microbiology
- Cell Biology
- Pathogenesis
Background:
- Salmonella Typhimurium pathogenesis relies on the Salmonella-containing vacuole (SCV) for intracellular replication.
- Bacterial effector proteins translocated via type three secretion systems are crucial for SCV biogenesis and stability.
- SifA is a key effector essential for SCV stability and Salmonella-induced filaments (SIFs).
Purpose of the Study:
- To investigate the role of the SopD2 effector in SCV dynamics and its interaction with SifA.
- To elucidate the mechanisms by which SopD2 influences SCV instability and host cell interactions.
- To understand the antagonistic relationship between SopD2 and SifA in Salmonella virulence.
Main Methods:
- Genetic manipulation of Salmonella Typhimurium strains to create effector deletion mutants (sifA(-) and sopD2(-)).
- Microscopic analysis of infected host cells to observe SCV morphology, membrane trafficking, and tubular structure formation.
- Assessment of bacterial replication within host macrophages and in vivo virulence studies in a mouse model.
Main Results:
- SopD2 deletion in a sifA(-) mutant strain led to SCV instability and cytoplasmic release.
- Deletion of sopD2 rescued intra-macrophagic replication and increased virulence of sifA(-) mutants in mice.
- SopD2 deletion in sifA(-) mutants restored SCV membrane trafficking and induced novel membrane tubular structures, dependent on other effectors.
Conclusions:
- SopD2 actively inhibits vesicular transport and outward tubule formation from the SCV, contributing to sifA(-) mutant phenotypes.
- SopD2 and SifA exhibit antagonistic roles in regulating SCV membrane dynamics.
- The study highlights the complex interplay of SopD2, SifA, PipB2, and other effectors in maintaining the Salmonella replicative niche.
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