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Updated: Aug 21, 2025

Studying Copper Nanoparticle-Induced Programmed Cell Death in Bacteria
Published on: May 16, 2025
Inhibition of the BNIP3/NIX-dependent mitophagy aggravates copper-induced mitochondrial dysfunction in duck renal
He Bai1,2, Yukun Fang1,3, Huabin Cao1
1Jiangxi Provincial Key Laboratory for Animal Health, Institute of Animal Population Health, College of Animal Science and Technology, Jiangxi Agricultural University, Nanchang, People's Republic of China.
Abstract:
The accumulation of copper (Cu) in the organisms could lead to kidney damage by causing mitochondrial dysfunction. Given that mitochondria are one of the targets of Cu poisoning, this study aimed to investigate the role of mitophagy in Cu-induced mitochondrial dysfunction in renal tubular epithelial cells to understand the mechanism of Cu nephrotoxicity. Hence, the cells were treated with different concentrations of Cu sulfate (CuSO4 ) (0, 100, and 200 μM), and mitophagy inhibitor (Cyclosporine A, 0.5 μM) and/or 200 μM CuSO4 in the combination for 12 h. Results showed that Cu caused mitochondrial swelling, vacuoles, and cristae fracture; increased the number of mitochondrial and lysosome fluorescent aggregation points; upregulated the mRNA levels of mitophagy-associated genes (LC3A, LC3B, P62, BNIP3, NIX, OPTN, NDP52, Cyp D LAMP1, and LAMP2) and protein levels of LC3II/LC3I, BNIP3, and NIX, downregulated the mRNA and protein levels of P62; reduced the mitochondrial membrane potential (MMP), ATP content, mitochondrial respiratory control rate (RCR), mitochondrial respiratory control rate (OPR), and the mRNA and protein levels of PGC-1α, TOMM20, and Mfn2, but increased the mRNA and protein levels of Drp1. Besides, cotreatment with Cu and CsA dramatically decreased the level of mitophagy, but increased mitochondrial division, further reduced MMP, ATP content, RCR, and OPR, mitochondrial fusion and thereby reduced mitochondrial biogenesis. Taken together, these data indicated that Cu exposure induced BNIP3/NIX-dependent mitophagy in duck renal tubular epithelial cells, and inhibition of mitophagy aggravated Cu-induced mitochondrial dysfunction.
Insights
Copper sulfate exposure triggers mitophagy in kidney cells, leading to mitochondrial dysfunction. Inhibiting mitophagy worsens this damage, revealing a key mechanism in copper nephrotoxicity.
Area of Science:
- Cell Biology
- Toxicology
- Renal Physiology
Background:
- Copper (Cu) accumulation can cause kidney damage via mitochondrial dysfunction.
- Mitochondria are a primary target of copper poisoning.
- Understanding the role of mitophagy in copper nephrotoxicity is crucial.
Purpose of the Study:
- To investigate the role of mitophagy in copper-induced mitochondrial dysfunction in renal tubular epithelial cells.
- To elucidate the mechanism of copper nephrotoxicity.
Main Methods:
- Renal tubular epithelial cells were treated with varying concentrations of copper sulfate (CuSO4).
- Cells were co-treated with CuSO4 and a mitophagy inhibitor (Cyclosporine A).
- Mitochondrial morphology, mitophagy markers, mitochondrial function (MMP, ATP, RCR, OPR), and gene/protein expression were analyzed.
Main Results:
- Copper sulfate induced mitochondrial damage (swelling, vacuolation, cristae fracture) and increased mitophagy markers.
- Copper sulfate reduced mitochondrial membrane potential, ATP content, and respiratory function, while promoting mitochondrial fission.
- Inhibiting mitophagy exacerbated copper-induced mitochondrial dysfunction and reduced mitochondrial biogenesis.
Conclusions:
- Copper exposure activates BNIP3/NIX-dependent mitophagy in duck renal tubular epithelial cells.
- Inhibition of mitophagy aggravates copper-induced mitochondrial dysfunction.
- Mitophagy plays a significant role in the mechanism of copper nephrotoxicity.
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