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Updated: Jul 14, 2026

Quantification of Cytosolic vs. Vacuolar Salmonella in Primary Macrophages by Differential Permeabilization
Published on: July 28, 2015
The SPI-2 type III secretion system restricts motility of Salmonella-containing vacuoles
Amy E Ramsden1, Luís J Mota, Sylvia Münter
1Centre for Molecular Microbiology and Infection, Imperial College London, Armstrong Road, London SW7 2AZ, UK.
Abstract:
Intracellular replication of Salmonella enterica occurs in membrane-bound compartments, called Salmonella-containing vacuoles (SCVs). Following invasion of epithelial cells, most SCVs migrate to a perinuclear region and replicate in close association with the Golgi network. The association of SCVs with the Golgi is dependent on the Salmonella-pathogenicity island-2 (SPI-2) type III secretion system (T3SS) effectors SseG, SseF and SifA. However, little is known about the dynamics of SCV movement. Here, we show that in epithelial cells, 2 h were required for migration of the majority of SCVs to within 5 microm from the microtubule organizing centre (MTOC), which is located in the same subcellular region as the Golgi network. This initial SCV migration was saltatory, bidirectional and microtubule-dependent. An intact Golgi, SseG and SPI-2 T3SS were dispensable for SCV migration to the MTOC, but were essential for maintenance of SCVs in that region. Live-cell imaging between 4 and 8 h post invasion revealed that the majority of wild-type SCVs displaced less than 2 microm in 20 min from their initial starting positions. In contrast, between 6 and 8 h post invasion the majority of vacuoles containing sseG, sseF or ssaV mutant bacteria displaced more than 2 microm in 20 min from their initial starting positions, with some undergoing large and dramatic movements. Further analysis of the movement of SCVs revealed that large displacements were a result of increased SCV speed rather than a change in their directionality, and that SseG influences SCV motility by restricting vacuole speed within the MTOC/Golgi region. SseG might function by tethering SCVs to Golgi-associated molecules, or by controlling microtubule motors, for example by inhibiting kinesin recruitment or promoting dynein recruitment.
Insights
Salmonella-containing vacuoles (SCVs) move to the cell center using microtubules. Effectors like SseG restrict SCV movement near the Golgi, preventing excessive vacuole motility during Salmonella infection.
Area of Science:
- Microbiology
- Cell Biology
- Infectious Diseases
Background:
- Salmonella enterica replicates intracellularly within Salmonella-containing vacuoles (SCVs).
- SCVs associate with the Golgi network, a process dependent on Salmonella pathogenicity island-2 (SPI-2) type III secretion system (T3SS) effectors.
Purpose of the Study:
- To investigate the dynamics of SCV movement within epithelial cells.
- To elucidate the role of SPI-2 T3SS effectors in SCV migration and localization.
Main Methods:
- Live-cell imaging of epithelial cells infected with Salmonella enterica.
- Analysis of SCV movement using microscopy and tracking algorithms.
- Utilizing bacterial mutants deficient in SPI-2 T3SS effectors (SseG, SseF, SsaV).
Main Results:
- SCVs migrate to the microtubule organizing centre (MTOC)/Golgi region in a microtubule-dependent manner within 2 hours.
- While initial migration to the MTOC is independent of Golgi, SseG, and SPI-2 T3SS, these factors are crucial for maintaining SCVs in this region.
- Mutants lacking SseG, SseF, or SsaV exhibit increased SCV motility and larger displacements from the MTOC/Golgi region after 6 hours post-invasion.
- SseG restricts SCV speed, potentially by tethering to Golgi-associated molecules or regulating microtubule motor proteins.
Conclusions:
- SCV migration to the perinuclear region is an active, microtubule-dependent process.
- SPI-2 T3SS effectors, particularly SseG, play a critical role in stabilizing SCVs at the MTOC/Golgi and restricting their motility.
- SseG's function in limiting SCV movement is essential for Salmonella intracellular replication dynamics.
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