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Published on: December 18, 2010
FNDC4 modulates macrophage responses and suppresses NF-κB in sepsis-induced lung injury
Jiameng Chen1, Juan Li1, Yingying Huang2
1Department of Emergency, Xinhua Hospital Affiliated to Shanghai Jiao Tong University, School of Medicine, Shanghai 200092, China.
Abstract:
Regulation of pulmonary macrophages and their related functions is crucial for preventing further deterioration in many diseases. Fibronectin III domain-containing 4 (FNDC4) is a secreted factor with high homology to the exercise-related myokine irisin (FNDC5) and has been reported to be significantly upregulated in multiple mouse models of inflammation and under human inflammatory conditions. Here, we investigated the role and mechanisms of FNDC4 in regulating pulmonary macrophage function and the NF-κB pathway in sepsis. Plasma samples and clinical data from sepsis patients and healthy volunteers were collected to quantify FNDC4 levels and analyze their association with sepsis severity. In vivo, septic rat models with different disease severities were established to evaluate the effects of FNDC4 on lung injury. In vitro, LPS-stimulated mouse macrophages (RAW264.7) were preincubated with varying concentrations of FNDC4 to explore its functional effects and underlying mechanisms. Clinically, plasma FNDC4 levels were lower in sepsis patients than in healthy controls and were positively correlated with sepsis severity. In animal experiments, FNDC4 administration effectively alleviated sepsis-induced lung injury. In cell-based assays, FNDC4 preserved the proliferation and migration of LPS-stimulated RAW264.7 cells and reduced their apoptosis rate, while also inhibiting phosphorylation-dependent activation within the NF-κB pathway. Collectively, these findings suggest that FNDC4 may reflect sepsis severity and that exogenous FNDC4 can mitigate sepsis-related lung damage in vivo, potentially through modulation of the NF-κB signaling pathway, indicating its potential therapeutic value in sepsis.
Insights
Fibronectin III domain-containing 4 (FNDC4) levels are lower in sepsis patients and correlate with disease severity. Administering FNDC4 reduces lung injury and inflammation by modulating the NF-κB pathway, suggesting therapeutic potential for sepsis.
Area of Science:
- Immunology
- Molecular Biology
- Pathology
Background:
- Pulmonary macrophage regulation is vital for disease management.
- Fibronectin III domain-containing 4 (FNDC4), similar to irisin, is upregulated in inflammatory conditions.
- The role of FNDC4 in sepsis and macrophage function requires investigation.
Purpose of the Study:
- To investigate FNDC4's role in regulating pulmonary macrophage function and the NF-κB pathway in sepsis.
- To assess FNDC4 levels as a sepsis severity biomarker.
- To evaluate FNDC4's therapeutic potential in sepsis-induced lung injury.
Main Methods:
- Collected plasma samples and clinical data from sepsis patients and healthy controls.
- Established septic rat models to assess FNDC4's effect on lung injury.
- Utilized LPS-stimulated mouse macrophages (RAW264.7) for in vitro functional assays and mechanism studies.
Main Results:
- Plasma FNDC4 levels were lower in sepsis patients and positively correlated with sepsis severity.
- FNDC4 administration alleviated sepsis-induced lung injury in vivo.
- In vitro, FNDC4 preserved macrophage proliferation and migration, reduced apoptosis, and inhibited NF-κB pathway activation.
Conclusions:
- FNDC4 may serve as a biomarker for sepsis severity.
- Exogenous FNDC4 demonstrates therapeutic potential by mitigating sepsis-related lung damage.
- FNDC4's protective effects are likely mediated through modulation of the NF-κB signaling pathway.
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