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Assessment of Mitochondrial Functions and Cell Viability in Renal Cells Overexpressing Protein Kinase C Isozymes
Published on: January 7, 2013
The mitochondrial pathway is involved in sodium fluoride (NaF)-induced renal apoptosis in mice
1College of Veterinary Medicine , Sichuan Agricultural University , Wenjiang , Chengdu , 611130 , China . Email: cuihengmin2008@sina.com ; Email: cui580420@sicau.edu.cn ; ; Tel: +86-136-0826-4628.
Abstract:
The objective of the present study was to explore the molecular mechanism of apoptosis induced by sodium fluoride (NaF) in the mouse kidney by using the methods of flow cytometry, quantitative real-time polymerase chain reaction (qRT-PCR), western blotting, and experimental pathology. 240 four-week-old ICR mice were randomly divided into 4 groups and exposed to different concentrations of NaF (0 mg kg-1, 12 mg kg-1, 24 mg kg-1 and 48 mg kg-1) for a period of 42 days. The results demonstrated that NaF increased cell apoptosis and the depolarization of the mitochondrial membrane potential (MMP), and that the mitochondrial pathway was involved in NaF-induced apoptosis. Alteration of the mitochondrial pathway was characterized by significantly increasing mRNA and protein expression levels of cytosolic cytochrome c (Cyt c), the second mitochondrial activator of caspases/direct inhibitors of the apoptosis binding protein with low pI (Smac/Diablo), the serine protease high-temperature-requirement protein A2/Omi (HtrA2/Omi), the apoptosis inducing factor (AIF), endonuclease G (Endo G), cleaved-cysteine aspartate specific protease-9 (cleaved-caspase-9), cleaved-cysteine aspartate specific protease-3 (cleaved-caspase-3), Bcl-2 antagonist killer (Bak), Bcl-2 associated X protein (Bax), Bcl-2 interacting mediator of cell death (Bim), cleaved-poly-ADP-ribose polymerase (cleaved-PARP), p-p53, and decreasing mRNA and protein expression levels of B-cell lymphoma-2 (Bcl-2), Bcl-extra large (Bcl-xL), and X chromosome-linked inhibitors of apoptosis proteins (XIAPs). To our knowledge, the mitochondrial pathway is reported for the first time in NaF-induced apoptosis of the human or animal kidney. Also, this study provides novel insights for further studying fluoride-induced nephrotoxicity.
Insights
Sodium fluoride (NaF) exposure triggers apoptosis in mouse kidneys by activating the mitochondrial pathway. This study details molecular changes, revealing new insights into fluoride-induced kidney damage.
Area of Science:
- Toxicology
- Molecular Biology
- Pathology
Background:
- Fluoride exposure is a global health concern.
- Sodium fluoride (NaF) is a common source of fluoride exposure.
- Understanding NaF's kidney toxicity mechanisms is crucial.
Purpose of the Study:
- To elucidate the molecular mechanisms of apoptosis induced by sodium fluoride (NaF) in mouse kidneys.
- To investigate the role of the mitochondrial pathway in NaF-induced nephrotoxicity.
Main Methods:
- Experimental pathology, flow cytometry, qRT-PCR, and western blotting were employed.
- ICR mice were exposed to varying concentrations of NaF (0-48 mg/kg) for 42 days.
- Apoptosis, mitochondrial membrane potential, and key protein/mRNA expression levels were analyzed.
Main Results:
- NaF exposure significantly increased kidney cell apoptosis and mitochondrial membrane potential depolarization.
- The mitochondrial pathway was confirmed to be involved in NaF-induced apoptosis.
- Expression levels of pro-apoptotic factors (e.g., Bax, cleaved-caspase-3) increased, while anti-apoptotic factors (e.g., Bcl-2) decreased.
Conclusions:
- The mitochondrial pathway is a primary mechanism in NaF-induced kidney apoptosis.
- This is the first report detailing the mitochondrial pathway in NaF-induced kidney apoptosis in any species.
- Findings offer novel insights into fluoride-induced nephrotoxicity and potential therapeutic targets.
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