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Updated: May 6, 2026

Cecal Ligation and Puncture-induced Sepsis as a Model To Study Autophagy in Mice
Published on: February 9, 2014
A novel long-acting C5a-blocking cyclic peptide prevents sepsis-induced organ dysfunction via effective blockade of
Zimiao Luo1, Pengfei Luo2, Haoyu Gu2
1Department of Burn Surgery, Burn Institute of PLA, The First Affiliated Hospital of Naval Medical University, Shanghai, 200433, China. luo_zimiao@163.com.
Abstract:
Sepsis is a life-threatening syndrome characterized by dysregulated host responses to infection, leading to severe organ dysfunction and a high mortality rate. Reducing the incidence of sepsis is of paramount importance. Given that sepsis-associated drugs largely fail in clinical trials, in this project, we devised and validated a novel long-acting C5a-blocking cyclic peptide drug (Cp1) via phage screening technology to block the upstream "bottleneck molecule" C5a-mediated amplification cascade of the inflammatory response. In the early stage of infection, we utilized the efficient neutralization of Cp1 against C5a to effectively curb the "waterfall effect" of inflammatory factors and mitigate the progression to dysregulated systemic inflammation, thereby providing effective prevention and therapeutic intervention for sepsis. First, in vitro and in vivo studies collectively demonstrated the optimal binding affinity and blocking selectivity of Cp1. The excellent plasma stability of Cp1 further endows it with antibody-like systemic circulation. In the CLP-induced sepsis model, Cp1 significantly suppressed the expression of inflammatory factors and chemokines in both plasma and peritoneal lavage fluid (PLF). Additionally, Cp1 potently inhibited innate immune injury. Ultimately, after a single administration of Cp1, the CLP-induced septic mice presented a significant reduction in bacterial burden, evident amelioration of organ dysfunction, and notable prolongation of survival time. Overall, the novel cyclic peptide drug Cp1 developed in this study is a highly promising and cost-competitive therapeutic option for sepsis prophylaxis and therapy.
Insights
A novel cyclic peptide drug, Cp1, effectively blocks C5a to prevent sepsis progression. This promising therapeutic candidate reduces inflammation, bacterial load, and improves survival in preclinical models.
Area of Science:
- Immunology
- Pharmacology
- Drug Discovery
Background:
- Sepsis is a life-threatening condition with high mortality due to dysregulated immune responses.
- Current sepsis treatments have limited efficacy, necessitating novel therapeutic strategies.
- Targeting upstream inflammatory mediators like C5a offers a potential approach to control sepsis progression.
Purpose of the Study:
- To develop and validate a novel long-acting C5a-blocking cyclic peptide drug (Cp1) for sepsis prevention and therapy.
- To assess the binding affinity, selectivity, and pharmacokinetic properties of Cp1.
- To evaluate the efficacy of Cp1 in a preclinical sepsis model.
Main Methods:
- Phage screening technology was used to identify and develop the cyclic peptide Cp1.
- In vitro and in vivo assays were performed to characterize Cp1's binding and blocking capabilities.
- The efficacy of Cp1 was evaluated in a cecal ligation and puncture (CLP)-induced sepsis model in mice.
Main Results:
- Cp1 demonstrated optimal binding affinity and blocking selectivity for C5a, with excellent plasma stability.
- Cp1 treatment significantly suppressed inflammatory factors and chemokines in sepsis models.
- Cp1 administration reduced bacterial burden, ameliorated organ dysfunction, and prolonged survival in septic mice.
Conclusions:
- Cp1 is a highly effective C5a inhibitor with therapeutic potential for sepsis.
- The drug exhibits favorable pharmacokinetic properties and preclinical efficacy.
- Cp1 represents a promising, cost-competitive therapeutic option for sepsis prophylaxis and treatment.
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