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Deficiency of C3a receptor attenuates the development of diabetic nephropathy
Xiao-Qian Li1, Dong-Yuan Chang1, Min Chen1
1Renal Division, Department of Medicine, Peking University First Hospital, Peking University Institute of Nephrology, Key Laboratory of Renal Disease, Ministry of Health of China, Key Laboratory of Chronic Kidney Disease Prevention and Treatment (Peking University), Ministry of Education, Beijing, China.
Insights
C3a receptor (C3aR) deficiency reduces kidney damage in diabetic nephropathy by suppressing inflammation and T-cell immunity. This suggests C3aR is a potential therapeutic target for diabetic kidney disease.
Area of Science:
- Nephrology
- Immunology
- Molecular Biology
Background:
- Diabetic nephropathy (DN) is a major cause of chronic kidney disease.
- Complement activation is implicated in DN pathogenesis.
- The role of C3a and its receptor (C3aR) in DN requires further investigation.
Purpose of the Study:
- To investigate the pathogenic role of C3a and C3a receptor (C3aR) in diabetic nephropathy.
- To explore C3aR as a potential therapeutic target for DN.
Main Methods:
- Examined C3aR expression in renal specimens from DN patients.
- Utilized C3aR gene knockout mice to assess kidney injury in diabetes.
- Performed gene expression microarray and in vitro macrophage studies.
Main Results:
- Renal C3aR expression was significantly elevated in DN patients.
- C3aR knockout diabetic mice showed reduced albuminuria and renal damage compared to wild-type.
- Microarray and immunohistochemistry revealed suppressed inflammation and T-cell infiltration in knockout mice.
- In vitro studies indicated C3a enhances macrophage cytokine production, promoting inflammation and T-cell differentiation.
Conclusions:
- C3aR deficiency attenuates diabetic renal damage by suppressing inflammatory responses and T-cell adaptive immunity.
- The mechanism involves modulation of macrophage-secreted cytokines.
- C3aR represents a promising therapeutic target for diabetic nephropathy.
Objective:
Diabetic nephropathy (DN) is the leading cause of chronic kidney disease and end-stage renal disease. Emerging evidence suggests that complement activation is involved in the pathogenesis of DN. The aim of this study was to investigate the pathogenic role of C3a and C3a receptor (C3aR) in DN.
Research Design And Methods:
The expression of C3aR was examined in the renal specimen of patients with DN. Using a C3aR gene knockout mice (C3aR-/-), we evaluated kidney injury in diabetic mice. The mouse gene expression microarray was performed to further explore the pathogenic role of C3aR. Then the underlying mechanism was investigated in vitro with macrophage treated with C3a.
Results:
Compared with normal controls, the renal expression of C3aR was significantly increased in patients with DN. C3aR-/- diabetic mice developed less severe diabetic renal damage compared with wild-type (WT) diabetic mice, exhibiting significantly lower level of albuminuria and milder renal pathological injury. Microarray profiling uncovered significantly suppressed inflammatory responses and T-cell adaptive immunity in C3aR-/- diabetic mice compared with WT diabetic mice, and this result was further verified by immunohistochemical staining of renal CD4+, CD8+ T cells and macrophage infiltration. In vitro study demonstrated C3a can enhance macrophage-secreted cytokines which could induce inflammatory responses and differentiation of T-cell lineage.
Conclusions:
C3aR deficiency could attenuate diabetic renal damage through suppressing inflammatory responses and T-cell adaptive immunity, possibly by influencing macrophage-secreted cytokines. Thus, C3aR may be a promising therapeutic target for DN.
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