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Csf2 Attenuated Sepsis-Induced Acute Kidney Injury by Promoting Alternative Macrophage Transition
Yiming Li1, Pan Zhai2, Yawen Zheng3
1Department of Critical Care Medicine, Zhongnan Hospital of Wuhan University, Wuhan, China.
Abstract:
Sepsis is a systemic inflammatory state that occurs in response to infection and significantly increases mortality in combination with acute kidney injury (AKI). Macrophages accumulate in the kidney after injury and undergo a transition from a proinflammatory (M1) phenotype to an alternatively activated (M2) phenotype that is required for normal repair. However, the specific signals that regulate the transition from the M1 to M2 phenotype in vivo are unknown. Here, we found an unexpected role of Colony stimulating factor 2 (Csf2) in controlling macrophage transition in vitro and in a mouse model of sepsis induced by cecal ligation and puncture (CLP). We first co-cultured human M1 macrophages with HK-2 cells and characterized cytokine/chemokine profiles via Luminex. Of the cytokines and chemokines that were overexpressed in medium from M1 macrophages cocultured with human kidney-2 (HK-2) cells compared with that from M1 macrophages cultured alone, Csf2 and IL6 showed the greatest increases. Csf2 was exclusively secreted by HK-2 cells but not by M1 macrophages. Furthermore, recombinant human Csf2 protein promoted transition of M1 macrophages to the M2 phenotype in a dose and time-dependent manner. The apoptosis and reactive oxygen species (ROS) release induced by M1 macrophages in HK-2 cells was attenuated after exposure to exogenous Csf2. In addition, the switch from the proinflammatory M1 phenotype to the M2 phenotype occurred via the p-Stat5 pathway, which was activated by Csf2. Importantly, we found that intraperitoneal injection of a Csf2-neutralizing antibody after CLP aggravated kidney injury and suppressed tubular proliferation, subsequently decreasing survival. However, administration of recombinant mouse Csf2 protein could rescue mice with sepsis. Together, our results indicate that Csf2 plays critical roles in regulating macrophage transition via activation of p-STAT5. These data form a foundation upon which new therapeutic strategies can be designed to improve the therapeutic efficacy of cytokine-based treatments for sepsis-induced AKI.
Insights
Colony stimulating factor 2 (Csf2) drives macrophage transition from M1 to M2 phenotypes, crucial for kidney repair after sepsis-induced acute kidney injury (AKI). Csf2 administration improved survival in a mouse sepsis model.
Area of Science:
- Immunology and Renal Pathophysiology
- Cellular signaling and macrophage biology
Background:
- Sepsis-induced acute kidney injury (AKI) involves macrophage accumulation and phenotype transition (M1 to M2) for kidney repair.
- The specific signals regulating M1 to M2 macrophage transition *in vivo* during sepsis-induced AKI remain largely unknown.
Purpose of the Study:
- To investigate the role of Colony stimulating factor 2 (Csf2) in regulating macrophage phenotype transition during sepsis-induced AKI.
- To explore the therapeutic potential of Csf2 in a mouse model of sepsis-induced AKI.
Main Methods:
- Co-culture of human M1 macrophages with human kidney-2 (HK-2) cells to analyze cytokine profiles.
- Treatment with recombinant human Csf2 protein *in vitro* to assess macrophage phenotype.
- Induction of sepsis via cecal ligation and puncture (CLP) in mice, followed by administration of Csf2-neutralizing antibody or recombinant Csf2 protein.
Main Results:
- Csf2 was identified as a key cytokine secreted by kidney cells that promotes M1 to M2 macrophage transition.
- Csf2-mediated M1 to M2 transition occurred via the p-Stat5 signaling pathway.
- In vivo, Csf2 neutralization worsened kidney injury and reduced survival, while Csf2 administration rescued sepsis outcomes.
Conclusions:
- Colony stimulating factor 2 (Csf2) plays a critical role in regulating macrophage transition during sepsis-induced AKI.
- Csf2 promotes kidney repair and improves survival by facilitating M1 to M2 macrophage polarization via p-Stat5 activation.
- Csf2 represents a potential therapeutic target for sepsis-induced AKI.
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