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Published on: January 12, 2016
Inhibition of caspase-3 by S-nitrosation and oxidation caused by nitric oxide
1Department of Medicine IV-Experimental Division, University of Erlangen Nürnberg, Loschgestrasse 8, Erlangen, 91054, Germany.
Abstract:
Apoptotic signaling cascades converge in the activation of caspases (interleukin-1beta converting enzyme like proteases). Treatment of the human promyelocytic leukaemia cell line U937 with actinomycin D resulted in the activation of caspase-3 also known as CPP32. Protease activity was measured in cytosolic extracts by fluorometric analysis of the time-dependent cleavage of acetyl-Asp-Glu-Val-Asp-aminomethylcoumarin (DEVD-AMC), a caspase-3 substrate. Caspase activity was inhibited by thiol modifying agents such as N-ethylmaleimide or iodoacetamide and NO donors such as S-nitrosoglutathione (GSNO), BF4NO, and spermine-NO. NO-mediated enzyme inhibition was fully reversible upon the addition of DTT (dithiothreitol). NO. itself was not primarily responsible for downregulation of caspase-3, as we found no correlation between rates of NO* release and the magnitude of enzyme inhibition. It is likely that S-nitrosation accounts for enzyme inhibition by various NO donors. SIN-1 and peroxynitrite were inhibitory as well. In this case, however, enzyme activity was not restored upon DTT addition, suggesting oxidation as an additional thiol modification mechanism. Our studies provide evidence that caspases are targeted by NO via S-nitrosation and oxidation of critical thiol groups.
Insights
Nitric oxide (NO) inhibits caspase-3 activity, a key enzyme in apoptosis, through S-nitrosation and oxidation of thiol groups. This reversible inhibition highlights NO
Area of Science:
- Biochemistry
- Cell Biology
- Molecular Biology
Background:
- Apoptotic signaling involves caspase activation.
- Caspase-3 (CPP32) is a critical protease in apoptosis.
- U937 cells are a human promyelocytic leukaemia cell line.
Purpose of the Study:
- To investigate the effect of nitric oxide (NO) on caspase-3 activity.
- To elucidate the mechanism of NO-mediated caspase inhibition.
Main Methods:
- Fluorometric analysis of caspase-3 substrate (DEVD-AMC) cleavage.
- Treatment with actinomycin D to induce apoptosis.
- Use of NO donors (GSNO, BF4NO, spermine-NO, SIN-1) and thiol modifying agents.
- Assessment of enzyme inhibition reversibility with dithiothreitol (DTT).
Main Results:
- Actinomycin D treatment activated caspase-3 in U937 cells.
- NO donors and thiol modifying agents inhibited caspase-3 activity.
- NO-mediated inhibition was reversible by DTT, suggesting S-nitrosation.
- Peroxynitrite and SIN-1 also inhibited caspase-3, with irreversible inhibition suggesting oxidation.
Conclusions:
- Caspase-3 is a target of NO.
- NO inhibits caspases primarily via S-nitrosation of critical thiol groups.
- Oxidation of thiol groups may also contribute to caspase inhibition by certain NO-releasing compounds.
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