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Colon Ascendens Stent Peritonitis CASP - a Standardized Model for Polymicrobial Abdominal Sepsis
Published on: December 18, 2010
Nonredundant protective properties of FPR2/ALX in polymicrobial murine sepsis
Thomas Gobbetti1, Sina M Coldewey2, Jianmin Chen1
1The William Harvey Research Institute, Barts and The London School of Medicine, Queen Mary University of London, London EC1M 6BQ, United Kingdom;
Abstract:
Sepsis is characterized by overlapping phases of excessive inflammation temporally aligned with an immunosuppressed state, defining a complex clinical scenario that explains the lack of successful therapeutic options. Here we tested whether the formyl-peptide receptor 2/3 (Fpr2/3)--ortholog to human FPR2/ALX (receptor for lipoxin A4)--exerted regulatory and organ-protective functions in experimental sepsis. Coecal ligature and puncture was performed to obtain nonlethal polymicrobial sepsis, with animals receiving antibiotics and analgesics. Clinical symptoms, temperature, and heart function were monitored up to 24 h. Peritoneal lavage and plasma samples were analyzed for proinflammatory and proresolving markers of inflammation and organ dysfunction. Compared with wild-type mice, Fpr2/3(-/-) animals exhibited exacerbation of disease severity, including hypothermia and cardiac dysfunction. This scenario was paralleled by higher levels of cytokines [CXCL1 (CXC receptor ligand 1), CCL2 (CC receptor ligand 2), and TNFα] as quantified in cell-free biological fluids. Reduced monocyte recruitment in peritoneal lavages of Fpr2/3(-/-) animals was reflected by a higher granulocyte/monocyte ratio. Monitoring Fpr2/3(-/-) gene promoter activity with a GFP proxy marker revealed an over threefold increase in granulocyte and monocyte signals at 24 h post-coecal ligature and puncture, a response mediated by TNFα. Treatment with a receptor peptido-agonist conferred protection against myocardial dysfunction in wild-type, but not Fpr2/3(-/-), animals. Therefore, coordinated physio-pharmacological analyses indicate nonredundant modulatory functions for Fpr2/3 in experimental sepsis, opening new opportunities to manipulate the host response for therapeutic development.
Insights
Formyl-peptide receptor 2/3 (Fpr2/3) plays a crucial role in regulating inflammation and protecting organs during experimental sepsis. Its absence exacerbates disease severity, highlighting its therapeutic potential.
Area of Science:
- Immunology
- Pathophysiology
- Pharmacology
Background:
- Sepsis involves complex inflammatory and immunosuppressive phases, hindering effective treatment.
- The formyl-peptide receptor 2/3 (Fpr2/3), homologous to human FPR2/ALX, is investigated for its role in sepsis.
Purpose of the Study:
- To determine the regulatory and organ-protective functions of Fpr2/3 in experimental sepsis.
- To elucidate the impact of Fpr2/3 deficiency on sepsis progression and host response.
Main Methods:
- A murine model of nonlethal polymicrobial sepsis induced by cecal ligation and puncture.
- Monitoring of clinical signs, temperature, cardiac function, and analysis of peritoneal lavage and plasma for inflammatory markers.
- Assessment of gene promoter activity using a GFP reporter in Fpr2/3(-/-) mice.
Main Results:
- Fpr2/3(-/-) mice showed exacerbated sepsis severity, including hypothermia and cardiac dysfunction.
- Higher levels of pro-inflammatory cytokines (CXCL1, CCL2, TNFα) and altered granulocyte/monocyte ratios were observed in Fpr2/3(-/-) mice.
- TNFα mediated increased granulocyte and monocyte signals in Fpr2/3(-/-) mice.
Conclusions:
- Fpr2/3 exerts nonredundant modulatory functions in experimental sepsis.
- Targeting Fpr2/3 offers potential therapeutic strategies for sepsis by manipulating the host response.
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