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Sodium Fluoride Arrests Renal G2/M Phase Cell-Cycle Progression by Activating ATM-Chk2-P53/Cdc25C Signaling Pathway
Qin Luo1, Hongrui Guo1, Ping Kuang1
1College of Veterinary Medicine, Sichuan Agricultural University, Ya'an, China.
Background/Aims:
Excessive fluoride intake can induce cytotoxicity, DNA damage and cell-cycle changes in many tissues and organs, including the kidney. However, the underlying molecular mechanisms of fluoride-induced renal cell-cycle changes are not well understood at present. In this study, we used a mouse model to investigate how sodium fluoride (NaF) induces cell-cycle changes in renal cells.
Methods:
Two hundred forty ICR mice were randomly assigned to four equal groups for intragastric administration of NaF (0, 12, 24 and 48 mg/kg body weight/day) for 42 days. Kidneys were taken to measure changes of the cell-cycle at 21 and 42 days of the experiment, using flow cytometry, quantitative real-time polymerase chain reaction (qRT-PCR) and western blot methods.
Results:
NaF, at more than 12 mg/kg body weight, induced G2/M phase cell-cycle arrest in the renal cells, which was supported by the finding of significantly increased percentages of renal cells in the G2/M phase. We found also that G2/M phase cell-cycle arrest was accompanied by up-regulation of p-ATM, p-Chk2, p-p53, p-Cdc25C, p-CDK1, p21, and Gadd45a protein expression levels; up-regulation of ATM, Chk2, p53, p21, and Gadd45a mRNA expression levels; down-regulation of CyclinB1, mdm2, PCNA protein expression levels; and down-regulation of CyclinB1, CDK1, Cdc25C, mdm2, and PCNA mRNA expression levels.
Conclusion:
In this mouse model, NaF, at more than 12 mg/ kg, induced G2/M phase cell-cycle arrest by activating the ATM-Chk2-p53/Cdc25C signaling pathway, which inhibits the proliferation of renal cells and development of the kidney. Activation of the ATM-Chk2-p53/Cdc25C signaling pathway is the mechanism of NaF-induced renal G2/M phase cell-cycle arrest in this model.
Insights
Excessive fluoride exposure causes kidney cell-cycle arrest by activating the ATM-Chk2-p53/Cdc25C pathway. This molecular mechanism inhibits renal cell proliferation and kidney development.
Area of Science:
- Toxicology
- Molecular Biology
- Renal Cell Biology
Background:
- Excessive fluoride intake can harm kidney cells, causing DNA damage and cell-cycle disruptions.
- The precise molecular pathways driving fluoride-induced kidney cell-cycle changes remain unclear.
Purpose of the Study:
- To investigate the molecular mechanisms by which sodium fluoride (NaF) induces cell-cycle alterations in renal cells using a mouse model.
Main Methods:
- Mice received varying doses of NaF (0, 12, 24, 48 mg/kg) intragastrically for 42 days.
- Renal cell-cycle changes were analyzed using flow cytometry, qRT-PCR, and western blotting at 21 and 42 days.
Main Results:
- NaF doses above 12 mg/kg induced significant G2/M phase cell-cycle arrest in renal cells.
- This arrest correlated with altered expression of key cell-cycle regulators, including ATM, Chk2, p53, Cdc25C, CDK1, p21, and Gadd45a.
- Specific protein and mRNA expression patterns indicated activation of the ATM-Chk2-p53/Cdc25C signaling pathway.
Conclusions:
- Sodium fluoride induces renal G2/M phase cell-cycle arrest by activating the ATM-Chk2-p53/Cdc25C signaling pathway.
- This pathway activation inhibits renal cell proliferation and kidney development in the studied mouse model.
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