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Salmonella exploits caspase-1 to colonize Peyer's patches in a murine typhoid model
1Department of Microbiology and Immunology, Stanford School of Medicine, Stanford University, Stanford, California 94305, USA. dmonack@leland.stanford.edu
Abstract:
Salmonella typhimurium invades host macrophages and induces apoptosis and the release of mature proinflammatory cytokines. SipB, a protein translocated by Salmonella into the cytoplasm of macrophages, is required for activation of Caspase-1 (Casp-1, an interleukin [IL]-1beta-converting enzyme), which is a member of a family of cysteine proteases that induce apoptosis in mammalian cells. Casp-1 is unique among caspases because it also directly cleaves the proinflammatory cytokines IL-1beta and IL-18 to produce bioactive cytokines. We show here that mice lacking Casp-1 (casp-1(-/)- mice) had an oral S. typhimurium 50% lethal dose (LD(50)) that was 1,000-fold higher than that of wild-type mice. Salmonella breached the M cell barrier of casp-1(-/)- mice efficiently; however, there was a decrease in the number of apoptotic cells, intracellular bacteria, and the recruitment of polymorphonuclear lymphocytes in the Peyer's patches (PP) as compared with wild-type mice. Furthermore, Salmonella did not disseminate systemically in the majority of casp-1(-/)- mice, as demonstrated by significantly less colonization in the PP, mesenteric lymph nodes, and spleens of casp-1(-/)- mice after an oral dose of S. typhimurium that was 100-fold higher than the LD(50). The increased resistance in casp-1(-/)- animals appears specific for Salmonella infection since these mice were susceptible to colonization by another enteric pathogen, Yersinia pseudotuberculosis, which normally invades the PP. These results show that Casp-1, which is both proapoptotic and proinflammatory, is essential for S. typhimurium to efficiently colonize the cecum and PP and subsequently cause systemic typhoid-like disease in mice.
Insights
Caspase-1 (Casp-1) is crucial for Salmonella typhimurium infection. Mice lacking Casp-1 show increased resistance to Salmonella, indicating its role in disease progression.
Area of Science:
- Immunology
- Microbiology
- Cell Biology
Background:
- Salmonella typhimurium invades macrophages, inducing apoptosis and cytokine release.
- Caspase-1 (Casp-1) activates apoptosis and processes proinflammatory cytokines IL-1beta and IL-18.
Purpose of the Study:
- To investigate the role of Casp-1 in Salmonella typhimurium infection and host defense.
Main Methods:
- Oral infection of wild-type and Casp-1-deficient (casp-1(-/-)) mice with Salmonella typhimurium.
- Assessment of bacterial load, host cell apoptosis, and immune cell recruitment in Peyer's patches (PP) and systemic organs.
- Evaluation of resistance to Yersinia pseudotuberculosis infection in casp-1(-/-) mice.
Main Results:
- Mice lacking Casp-1 exhibited a 1,000-fold higher LD(50) for Salmonella typhimurium.
- Salmonella efficiently breached the M cell barrier in casp-1(-/-) mice, but with reduced apoptosis, intracellular bacteria, and immune cell recruitment in Peyer's patches.
- Systemic dissemination of Salmonella was significantly reduced in casp-1(-/-) mice.
- casp-1(-/-) mice remained susceptible to Yersinia pseudotuberculosis infection.
Conclusions:
- Caspase-1 is essential for Salmonella typhimurium colonization and systemic disease development in mice.
- Casp-1's proapoptotic and proinflammatory functions are critical for controlling Salmonella infection.
- The role of Casp-1 in host defense appears specific to Salmonella infection.