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Updated: Jan 18, 2026

Author Spotlight: Efficiently Eliminating Bacteriophages from Infected Salmonella Cultures Using Lipopolysaccharides
Published on: June 28, 2024
The Salmonella phage shock protein system is required for defense against host antimicrobial peptides
Marie-Ange Massicotte1,2, Aline A Fiebig1,2, Andrei Bogza3,4
1Department of Biochemistry and Biomedical Sciences, McMaster University, Hamilton, Ontario, Canada.
Abstract:
Macrophages are professional phagocytes that play a major role in engulfing and eliminating invading pathogens. Some intracellular pathogens, such as Salmonella enterica serovar Typhimurium, exploit macrophages as niches for their replication, which requires precise and dynamic modulation of bacterial gene expression in order to resist the hostile intracellular environment. Here, we present a comprehensive analysis of the global transcriptome of S. Typhimurium across four stages of infection of primary macrophages. Our results revealed a profound change in early-stage gene expression dominated by pathways linked to metabolic processes required for Salmonella adaptation to the proinflammatory conditions of the macrophage. We identified the phage shock protein (Psp) system to be highly expressed in intracellular S. Typhimurium, with sustained high expression over the course of infection. We determined that the Psp system is regulated by the virulence-associated two-component system SsrA-SsrB, which coordinates its expression with critical bacterial functions required for immune evasion and intracellular survival. Functional assays demonstrated that the Psp system mediates resistance to host antimicrobial peptides, including cathelicidin-related antimicrobial peptide (CRAMP), which we demonstrate supports bacterial persistence in host tissues and survival within macrophages. Our findings establish the Psp system as a new and critical adaptive mechanism for evading host immune defenses and highlight the utility of temporal transcriptomics in unraveling the genetic strategies employed by S. Typhimurium during macrophage infection.
Insights
Salmonella Typhimurium uses the phage shock protein (Psp) system to survive inside macrophages. This system helps bacteria resist antimicrobial peptides and evade immune defenses for successful infection.
Area of Science:
- Microbiology
- Immunology
- Genomics
Background:
- Macrophages are key immune cells that engulf pathogens.
- Intracellular pathogens like Salmonella Typhimurium replicate within macrophages.
- Bacterial adaptation requires dynamic gene expression modulation.
Purpose of the Study:
- To analyze the global transcriptome of S. Typhimurium during macrophage infection.
- To identify bacterial genes and pathways crucial for intracellular survival.
- To elucidate the role of the phage shock protein (Psp) system in Salmonella pathogenesis.
Main Methods:
- Temporal transcriptomic analysis of S. Typhimurium in primary macrophages.
- Identification of highly expressed genes and regulatory pathways.
- Functional assays to determine the role of the Psp system in bacterial resistance and survival.
Main Results:
- Early S. Typhimurium gene expression is dominated by metabolic adaptation pathways.
- The phage shock protein (Psp) system shows sustained high expression during infection.
- The Psp system, regulated by SsrA-SsrB, confers resistance to antimicrobial peptides like CRAMP, aiding survival.
Conclusions:
- The Psp system is a critical adaptive mechanism for S. Typhimurium to evade host immune defenses.
- SsrA-SsrB regulates the Psp system for immune evasion and intracellular survival.
- Temporal transcriptomics is valuable for understanding bacterial infection strategies.
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