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Mancozeb induces nephrotoxicity by impairing the oxidative phosphorylation pathway: A transcriptome study
Yan Zhang1, Ran Wen1, Jialu Bao1
1College of Traditional Chinese Veterinary Medicine, Hebei Agricultural University, Baoding 071001, China.
Abstract:
This study analyzed the mechanism underlying mancozeb (MCZ)-induced kidney injury by detecting kidney function indicators, combined with transcriptome and metabolome sequencing. Twenty mice were randomly assigned into two groups (control and MCZ groups) to explore the MCZ-induced kidney toxicity. The control group was gavaged with 0.2 mL of deionized water, and the MCZ group with 0.2 mL of 100 mg/kg MCZ for 30 days. The kidney structure of the MCZ group was damaged, with slight hyaline degeneration in the kidney tubular epithelial envelope. The creatinine (CRE) and uric acid (UA) were significantly increased in the MCZ group than in the control group. Moreover, the reactive oxygen species (ROS) significantly accumulated in the MCZ group kidneys. Compared to the control group, superoxide dismutase (SOD) and glutathione peroxidase (GSH-PX) were significantly decreased in the MCZ group, while the MDA content was substantially increased. The differentially expressed genes (DEGs) in the MCZ group were mainly enriched in the oxidative phosphorylation pathway. Besides, in the MCZ group, ndufs1 and ndufab1 genes were significantly up-regulated, while cox5b, ndufa5, and ndufa6 genes were significantly down-regulated, consistent with the PCR verification results. The metabolomic analysis identified cGMP-PKG signaling pathway of MCZ-induced nephrotoxicity, with Guanosine monophosphate and Adenosine 5'-monophosphate as the main altered metabolites. These results indicated that MCZ impairs the mice kidneys by obstructing the oxidative phosphorylation pathway, which increases oxidative stress in the kidneys, resulting in kidney injury.
Insights
Mancozeb (MCZ) causes kidney injury in mice by disrupting oxidative phosphorylation, leading to increased oxidative stress. This mechanism involves altered gene expression and key metabolites, ultimately impairing kidney function.
Area of Science:
- Toxicology
- Molecular Biology
- Biochemistry
Background:
- Mancozeb (MCZ) is a widely used fungicide.
- Understanding the molecular mechanisms of MCZ-induced kidney toxicity is crucial for risk assessment.
Purpose of the Study:
- To elucidate the underlying mechanism of mancozeb (MCZ)-induced kidney injury.
- To investigate the effects of MCZ exposure on kidney function, gene expression, and metabolic pathways in mice.
Main Methods:
- Mice were exposed to MCZ (100 mg/kg) or control (deionized water) for 30 days.
- Kidney function indicators, oxidative stress markers, transcriptome, and metabolome were analyzed.
- Gene expression was verified using PCR.
Main Results:
- MCZ exposure damaged kidney structure and significantly increased creatinine and uric acid levels.
- MCZ induced oxidative stress by increasing reactive oxygen species (ROS) and MDA, while decreasing SOD and GSH-PX.
- Transcriptome analysis revealed enrichment in the oxidative phosphorylation pathway, with specific gene expression changes (e.g., up-regulation of ndufs1, ndufab1; down-regulation of cox5b, ndufa5, ndufa6).
- Metabolomic analysis identified the cGMP-PKG signaling pathway and altered levels of Guanosine monophosphate and Adenosine 5'-monophosphate.
Conclusions:
- MCZ impairs kidney function in mice primarily by obstructing the oxidative phosphorylation pathway.
- This obstruction leads to increased oxidative stress and subsequent kidney injury.
- The findings provide insights into the molecular pathogenesis of MCZ nephrotoxicity.
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