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Updated: Oct 11, 2025

Quantification of Cytosolic vs. Vacuolar Salmonella in Primary Macrophages by Differential Permeabilization
Published on: July 28, 2015
Idiosyncratic Biogenesis of Intracellular Pathogens-Containing Vacuoles
Bethany Vaughn1, Yousef Abu Kwaik1,2
1Department of Microbiology and Immunology, University of Louisville, Louisville, KY, United States.
Abstract:
While most bacterial species taken up by macrophages are degraded through processing of the bacteria-containing vacuole through the endosomal-lysosomal degradation pathway, intravacuolar pathogens have evolved to evade degradation through the endosomal-lysosomal pathway. All intra-vacuolar pathogens possess specialized secretion systems (T3SS-T7SS) that inject effector proteins into the host cell cytosol to modulate myriad of host cell processes and remodel their vacuoles into proliferative niches. Although intravacuolar pathogens utilize similar secretion systems to interfere with their vacuole biogenesis, each pathogen has evolved a unique toolbox of protein effectors injected into the host cell to interact with, and modulate, distinct host cell targets. Thus, intravacuolar pathogens have evolved clear idiosyncrasies in their interference with their vacuole biogenesis to generate a unique intravacuolar niche suitable for their own proliferation. While there has been a quantum leap in our knowledge of modulation of phagosome biogenesis by intravacuolar pathogens, the detailed biochemical and cellular processes affected remain to be deciphered. Here we discuss how the intravacuolar bacterial pathogens Salmonella, Chlamydia, Mycobacteria, Legionella, Brucella, Coxiella, and Anaplasma utilize their unique set of effectors injected into the host cell to interfere with endocytic, exocytic, and ER-to-Golgi vesicle traffic. However, Coxiella is the main exception for a bacterial pathogen that proliferates within the hydrolytic lysosomal compartment, but its T4SS is essential for adaptation and proliferation within the lysosomal-like vacuole.
Insights
Intravacuolar pathogens like Salmonella and Chlamydia evade macrophage defenses by injecting bacterial effectors to remodel vacuoles. These pathogens exhibit unique strategies, despite using similar secretion systems, to create niches for survival and proliferation.
Area of Science:
- Microbiology
- Cell Biology
- Pathogenesis
Background:
- Most bacteria are degraded in macrophages via the endosomal-lysosomal pathway.
- Intravacuolar pathogens have evolved mechanisms to evade this degradation.
- Specialized secretion systems (T3SS-T7SS) are crucial for these pathogens.
Purpose of the Study:
- To review how various intravacuolar pathogens manipulate host cell processes.
- To highlight the unique effector protein toolboxes employed by different pathogens.
- To discuss the remodeling of vacuole biogenesis for pathogen proliferation.
Main Methods:
- Review of scientific literature on intravacuolar pathogens.
- Analysis of effector protein functions and secretion systems (T3SS-T7SS).
- Comparison of vacuole biogenesis interference strategies across different bacterial species.
Main Results:
- Intravacuolar pathogens utilize distinct effector proteins to modulate host cell targets.
- Pathogens remodel vacuoles into specialized niches for replication.
- Pathogens interfere with endocytic, exocytic, and ER-to-Golgi vesicle traffic.
- Coxiella is an exception, proliferating in a lysosomal compartment using T4SS.
Conclusions:
- Intravacuolar pathogens exhibit unique strategies in vacuole biogenesis interference.
- Understanding these pathogen-specific mechanisms is key to deciphering host-pathogen interactions.
- Further research is needed to elucidate the detailed biochemical and cellular processes involved.
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