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Renal Ischaemia Reperfusion Injury: A Mouse Model of Injury and Regeneration
Published on: June 7, 2014
Macrophages promote heat stress nephropathy in mice via the C3a-C3aR-TNF pathway
Yang Yang1, Dongjuan Zhang2, Minghui Song3
1Department of Nephrology, The 981(th) Hospital of Joint Logistic Support Force, Chengde, China; Kidney Institution of the Chinese People's Liberation Army, Chang Zheng Hospital, The Navy Military Medical University, Shanghai, China.
Insights
Recurrent dehydration causes heat-stress nephropathy (HSN). Complement component C3aR signaling drives kidney injury by promoting TNF-α-producing macrophages, offering a new target for preventing HSN.
Area of Science:
- Nephrology
- Immunology
- Molecular Biology
Background:
- Heat-stress nephropathy (HSN) is linked to dehydration, but its mechanisms are unclear.
- The complement system's role in dehydration-induced kidney injury requires further investigation.
Purpose of the Study:
- To elucidate the mechanisms of HSN pathogenesis.
- To evaluate the role of complement component C3a-C3aR signaling in dehydration-induced kidney injury.
Main Methods:
- Dehydration model in mice.
- Administration of C3aR inhibitor SB290157.
- Flow cytometry (FACS) for macrophage analysis.
- In vitro co-culture systems.
- Tumor necrosis factor-alpha knockout (TNF-KO) mice.
Main Results:
- Dehydration activated complement, with C3a-C3aR interaction correlating with kidney injury.
- C3aR inhibition prevented macrophage infiltration, apoptosis, and fibrosis.
- C3a-C3aR signaling promoted M1 macrophage polarization and TNF-α production.
- Macrophages, not renal tubular epithelial cells (RTECs), are the primary target of C3a-C3aR.
Conclusions:
- The C3a-C3aR-macrophage axis is a key driver of HSN.
- Targeting C3aR may prevent kidney injury associated with dehydration.
Abstract:
Heat-stress nephropathy (HSN) is associated with recurrent dehydration. However, the mechanisms underlying HSN remain largely unknown. In this study, we evaluated the role of dehydration in HSN and kidney injury in mice. Firstly, we found that complement was strongly activated in the mice that were exposed to dehydration; and among complement components, the interaction between C3a and its receptor, C3aR, was more closely associated with kidney injury. Then two-month-old mice were intraperitoneally injected with 2% dimethyl sulfoxide (DMSO) or the C3aR inhibitor SB290157 during dehydration. DMSO-treated mice exhibited excessive macrophage infiltration, renal cell apoptosis, and kidney fibrosis. In contrast, SB290157-treated mice had no apparent kidney injury. By fluorescence-activated cell sorting (FACS), we found that SB290157 treatment in mice remarkably inhibited macrophage infiltration and suppressed CCR2 expression in macrophages. In addition, C3a binding to C3aR promoted macrophage polarization toward the M1 phenotype and increased the production of TNF-α, which induced renal tubular epithelial cell (RTEC) apoptosis in vivo and in vitro. Interestingly, C3a treatment failed to directly induce TNF-α production and apoptosis in RTECs. However, TNF-α production in response to C3a treatment was significantly elevated when RTECs were cocultured with macrophages, suggesting that macrophages rather than RTECs are the target of C3a-C3aR interaction. At last, we proved that infusion of macrophages which highly expressed TNF-α would significantly deteriorate HSN in TNF-KO mice when they were exposed to recurrent dehydration. This study uncovers a novel mechanism underlying the pathogenesis of HSN, and a potential pathway to prevent kidney injury during dehydration.

