Exogenous platelet-activating factor acetylhydrolase reduces mortality in mice with systemic inflammatory response
Rachel N Gomes1, Fernando A Bozza, Rodrigo T Amâncio
1Laboratório de Imunofarmacologia, Departamento de Fisiologia e Farmacodinâmica, IOC, Fundação Oswaldo Cruz, Rio de Janeiro, RJ, Brazil.
Abstract:
Current evidence indicates that dysregulation of the host inflammatory response to infectious agents is central to the mortality of patients with sepsis and in those with systemic inflammatory response syndrome. Strategies to block inflammatory mediators, often with complicated outcomes, are currently being investigated as new adjuvant therapies for sepsis. Here, we determined if administration of recombinant platelet-activating factor (rPAF)-acetylhydrolase (rPAF-AH), an enzyme that inactivates PAF and PAF-like lipids, protects mice from inflammatory injury and death after administration of lipopolysaccharide (LPS) or cecal ligation and puncture (CLP). Administration of rPAF-AH increased plasma PAF-AH activity and reduced mortality in both models. Treatment with rPAF-AH increased peritoneal fluid levels of monocyte chemoattractant protein 1/CCL-2 and decreased interleukin 6 and migration inhibitory factor levels after LPS administration or CLP. Administration of a broad-spectrum antibiotic together with rPAF-AH was more protective than single treatment with either of these agents. The combined treatment was associated with reduced interleukin 6 levels in mice subjected to CLP. We observed acute decreases in plasma PAF-AH activity in mice subjected to CLP or challenged with LPS and in human patients with sepsis. We conclude that alterations in the endogenous PAF-AH contribute to the pathophysiology of sepsis and that administration of exogenous rPAF-AH reduces inflammatory injury and mortality in models relevant to the clinical syndrome. Variations in endogenous PAF-AH activity may potentially account for variable responses to exogenous rPAF-AH in previous clinical trials. Serial measurements of plasma PAF-AH activity in murine models demonstrate dynamic regulation of the endogenous enzyme, potentially explaining the variations in human subjects.
Insights
Recombinant platelet-activating factor acetylhydrolase (rPAF-AH) reduces mortality in sepsis models by inactivating inflammatory lipids. Combined with antibiotics, rPAF-AH offers enhanced protection against sepsis-induced inflammatory injury and death.
Area of Science:
- Immunology
- Biochemistry
- Pathophysiology
Background:
- Sepsis mortality is linked to dysregulated inflammatory responses.
- Adjuvant therapies targeting inflammatory mediators are under investigation for sepsis.
- Platelet-activating factor (PAF) and related lipids play a role in inflammation.
Purpose of the Study:
- To investigate the protective effects of recombinant PAF-acetylhydrolase (rPAF-AH) against sepsis-induced inflammatory injury and mortality.
- To explore the impact of rPAF-AH on inflammatory mediator levels and immune cell migration.
- To assess the combined efficacy of rPAF-AH and antibiotics in sepsis models.
Main Methods:
- Administration of rPAF-AH to mice challenged with lipopolysaccharide (LPS) or cecal ligation and puncture (CLP).
- Measurement of plasma rPAF-AH activity, inflammatory cytokine levels (IL-6, MIF), and monocyte chemoattractant protein 1 (MCP-1/CCL-2).
- Evaluation of survival rates and combined treatment effects with broad-spectrum antibiotics.
Main Results:
- rPAF-AH administration increased plasma rPAF-AH activity and reduced mortality in LPS and CLP models.
- Treatment modulated peritoneal fluid cytokine levels, increasing MCP-1/CCL-2 and decreasing IL-6 and MIF.
- Combined rPAF-AH and antibiotic therapy showed greater protection than single treatments, with reduced IL-6 in CLP mice.
- Acute decreases in endogenous PAF-AH activity were observed in sepsis models and human sepsis patients.
Conclusions:
- Dysregulation of endogenous PAF-AH contributes to sepsis pathophysiology.
- Exogenous rPAF-AH administration mitigates inflammatory injury and mortality in sepsis models.
- Variations in endogenous PAF-AH activity may explain differential responses to rPAF-AH therapy and highlight its therapeutic potential.
