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High Concentration of C5a-Induced Mitochondria-Dependent Apoptosis in Murine Kidney Endothelial Cells
I-Jung Tsai1, Wei-Chou Lin2, Yao-Hsu Yang3
1Department of Pediatrics, National Taiwan University Hospital and National Taiwan University College of Medicine, Taipei 100, Taiwan. ijtsai@ntu.edu.tw.
Abstract:
Patients with a relapse of idiopathic nephrotic syndrome have significantly increased levels of serum complement component 5a (C5a), and proteinuria has been noted in mice treated with C5a via changes in permeability of kidney endothelial cells (KECs) in established animal models. However, the apoptosis of KECs treated with high concentrations of C5a has also been observed. As mitochondrial damage is known to be important in cell apoptosis, the aim of this study was to examine the association between C5a-induced mouse KEC apoptosis and mitochondrial damage. Mouse KECs were isolated and treated with different concentrations of C5a. Cell viability assays showed that a high-concentration mouse recombinant protein C5a (rmC5a) treatment reduced mouse KEC growth. Cell cycle phase analysis, including apoptosis (sub-G1 phase) showed an increased percentage of the subG1 phase with a high-concentration rmC5a treatment. Cytochrome c and caspase 3/9 activities were significantly induced in the mouse KECs after a high-dose rmC5a (50 ng/mL) treatment, and this was rescued by pretreatment with the C5a receptor (C5aR) inhibitor (W-54011) and N-acetylcysteine (NAC). Reactive oxygen species (ROS) formation was detected in C5a-treated mouse KECs; however, W-54011 or NAC pretreatment inhibited high-dose rmC5a-induced ROS formation and also reduced cytochrome c release, apoptotic cell formation, and apoptotic DNA fragmentation. These factors determined the apoptosis of mouse KECs treated with high-dose C5a through C5aR and subsequently led to apoptosis via ROS regeneration and cytochrome c release. The results showed that high concentrations of C5a induced mouse KEC apoptosis via a C5aR/ROS/mitochondria-dependent pathway. These findings may shed light on the potential mechanism of glomerular sclerosis, a process in idiopathic nephrotic syndrome causing renal function impairment.
Insights
High levels of complement component 5a (C5a) trigger kidney endothelial cell (KEC) apoptosis via a C5a receptor pathway, involving reactive oxygen species and mitochondria. This mechanism may explain kidney function impairment in idiopathic nephrotic syndrome.
Area of Science:
- Nephrology
- Immunology
- Cell Biology
Background:
- Relapses of idiopathic nephrotic syndrome correlate with elevated serum complement component 5a (C5a).
- C5a exposure can alter kidney endothelial cell (KEC) permeability and induce KEC apoptosis, suggesting a role in renal impairment.
- Mitochondrial damage is a known factor in cellular apoptosis.
Purpose of the Study:
- To investigate the association between C5a-induced KEC apoptosis and mitochondrial damage.
- To elucidate the specific pathway through which C5a induces apoptosis in mouse KECs.
Main Methods:
- Isolation and treatment of mouse KECs with varying concentrations of recombinant C5a (rmC5a).
- Assessment of cell viability, cell cycle, cytochrome c release, caspase activity, and reactive oxygen species (ROS) formation.
- Evaluation of the effects of C5a receptor (C5aR) inhibitor (W-54011) and N-acetylcysteine (NAC) on C5a-induced apoptosis.
Main Results:
- High-concentration rmC5a treatment reduced mouse KEC viability and increased apoptosis (sub-G1 phase).
- C5a treatment significantly induced cytochrome c and caspase 3/9 activities, along with ROS formation.
- Pretreatment with W-54011 or NAC rescued KECs from C5a-induced apoptosis by inhibiting ROS production and subsequent mitochondrial damage.
Conclusions:
- High concentrations of C5a induce mouse KEC apoptosis through a C5a receptor (C5aR)/ROS/mitochondria-dependent pathway.
- This pathway involves ROS generation and subsequent mitochondrial dysfunction, leading to apoptosis.
- Findings offer insights into the pathogenesis of glomerular sclerosis in idiopathic nephrotic syndrome and potential therapeutic targets.
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Concentration Dependence
Chemical kinetics refers to the rate or speed of a chemical reaction. The rate depends on the mechanism, complexity, and number of reactants in the reaction. Reactant concentration also plays a significant role in the rate of a reaction.
The rate law quantifies this relationship through experimentation. Each reactant contributes to the speed of the reaction by a factor known as the reaction order. This factor can range from zero to two, and it depends...
Concentration Dependence

