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Copper-induced renal toxicity controlled by period1 through modulation of Atox1 in mice
Sarah Tominaga1,2, Hiroki Yoshioka3,4,5, Satoshi Yokota6
1Graduate School of Pharmaceutical Sciences, Kinjo Gakuin University, 2-1723 Omori, Moriyamaku, Nagoya, Aichi 463-8521, Japan.
Abstract:
Copper (Cu) is known to induce oxidative stress and apoptosis in the liver, kidney, and brain. We previously demonstrated the molecular mechanism underlying the Cu-induced hepatic diurnal variation. However, the cellular molecule(s) involved in Cu-induced renal chronotoxicity remain unknown. In this study, we aimed to elucidate the molecular mechanisms underlying Cu-induced diurnal toxicity in the kidneys. We evaluated cell viability and clock gene expression levels in mouse renal cortex tubular cells (MuRTE61 cells) after Cu treatment. We also examined the Cu homeostasis- and apoptosis-related gene levels after period 1 (Per1) overexpression in MuRTE61 cells. Cu treatment decreased MuRTE61 cell viability in a dose-dependent manner. It increased the Per1 expression levels after 24 h. Notably, Per1 overexpression alleviated the Cu-induced inhibition of MuRTE61 cell viability. Moreover, Per1 overexpression downregulated the cleaved caspase-3 and reduced Cu levels by upregulating the antioxidant 1 copper chaperone (Atox1) levels. These results suggest that Cu-induced renal toxicity is associated with Per1 expression via the regulation of the copper chaperone, Atox1.
Insights
Copper exposure causes kidney cell damage, but the clock gene Per1 can protect against this toxicity. Overexpressing Per1 reduces copper levels and cell death by regulating the copper chaperone Atox1.
Area of Science:
- Toxicology
- Chronobiology
- Molecular Biology
Background:
- Copper (Cu) induces oxidative stress and apoptosis in vital organs.
- Cu-induced hepatic diurnal variation mechanisms are known, but renal chronotoxicity mechanisms are unclear.
Purpose of the Study:
- To elucidate the molecular mechanisms of copper-induced diurnal toxicity in the kidneys.
- To investigate the role of clock gene Per1 in copper's renal toxicity.
Main Methods:
- Evaluated cell viability and clock gene expression in mouse renal cells (MuRTE61) post-copper treatment.
- Examined copper homeostasis and apoptosis gene levels following Per1 overexpression.
Main Results:
- Copper decreased cell viability dose-dependently and increased Per1 expression.
- Per1 overexpression alleviated copper-induced cell viability inhibition.
- Per1 overexpression downregulated cleaved caspase-3 and reduced copper levels via Atox1 upregulation.
Conclusions:
- Copper-induced renal toxicity is linked to Per1 expression.
- Per1 regulates copper toxicity in kidney cells by modulating the copper chaperone Atox1.
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