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Activation of multiple proteolysis systems contributes to acute cadmium cytotoxicity
Yen-Hsiu Yeh1, Chia-Chih Tsai1, Tien-Wen Chen1
1Department and Graduate Institute of Microbiology, College of Medicine, National Taiwan University, Room 709, No. 1, Section 1, Jen-Ai Road, Taipei, 10051, Taiwan.
Abstract:
Cadmium exhibits both toxic and carcinogenic effects, and its cytotoxicity is linked to various cellular pathways, such as oxidative stress, ubiquitin-proteasome, and p53-mediated response pathways. The molecular mechanism(s) underlying cadmium cytotoxicity appears to be complex, but remains largely unclear. Here, we examined the effects of cadmium on the protein catabolism using two surrogate markers, DNA topoisomerases I and II alpha and its contribution to cytotoxicity. We have found that cadmium exposure induced time- and concentration-dependent decreases in the protein level of surrogate markers and therefore suggest that cadmium may be involved in proteolysis system activation. A pharmacological study further revealed the novel role(s) of these proteolytic activities and reactive oxygen species (ROS) in the cadmium-induced acute toxicity: (i) Proteasome inhibition only partially relieved the cadmium-induced proteolysis of topoisomerases; (ii) Moreover, we report for the first time that the activation of metalloproteases, serine proteases, and cysteine proteases contributes to the acute cadmium cytotoxicity; (iii) Consistent with the notion that both ROS generation and proteolysis system activation contribute to the cadmium-induced proteolysis and cytotoxicity, the scavenger N-acetylcysteine and aforementioned protease inhibition not only reduced the cadmium-induced topoisomerase degradation but also alleviated the cadmium-induced cell killing. Taken together, acute cadmium exposure may activate multiple proteolytic systems and ROS formation, subsequently leading to intracellular damage and cytotoxicity. Thus, our results provide a novel insight into potential action mechanism(s) by which cadmium exerts its cytotoxic effect and suggest potential strategies to prevent cadmium-associated acute toxicity.
Insights
Cadmium exposure triggers protein breakdown and reactive oxygen species (ROS) generation, leading to cell damage. Inhibiting proteases and ROS may protect against cadmium
Area of Science:
- Environmental Toxicology
- Molecular Toxicology
- Cell Biology
Background:
- Cadmium (Cd) is a toxic and carcinogenic heavy metal.
- Cd cytotoxicity is linked to oxidative stress and proteasome pathways.
- The precise molecular mechanisms of Cd toxicity are not fully understood.
Purpose of the Study:
- To investigate the impact of Cd on protein catabolism.
- To identify the role of proteolysis and reactive oxygen species (ROS) in Cd-induced cytotoxicity.
- To explore potential protective strategies against acute Cd toxicity.
Main Methods:
- Exposure of cells to Cd.
- Quantification of DNA topoisomerases I and II alpha as surrogate markers for protein catabolism.
- Pharmacological inhibition of proteasome, metalloproteases, serine proteases, and cysteine proteases.
- Assessment of ROS generation using N-acetylcysteine (NAC).
Main Results:
- Cd exposure decreased topoisomerase protein levels in a time- and concentration-dependent manner.
- Proteasome inhibition only partially prevented Cd-induced topoisomerase degradation.
- Activation of metalloproteases, serine proteases, and cysteine proteases significantly contributed to Cd cytotoxicity.
- Both ROS generation and protease activation were implicated in Cd-induced proteolysis and cytotoxicity.
- NAC and protease inhibitors reduced topoisomerase degradation and alleviated Cd-induced cell death.
Conclusions:
- Acute Cd exposure activates multiple proteolytic systems and induces ROS formation.
- These events lead to intracellular damage and cytotoxicity.
- Inhibition of specific proteases and ROS may offer a protective strategy against acute Cd toxicity.
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