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Production and Detection of Reactive Oxygen Species (ROS) in Cancers
Published on: November 21, 2011
Scavenging system efficiency is crucial for cell resistance to ROS-mediated methylglyoxal injury
Fernanda Amicarelli1, Sabrina Colafarina, Franca Cattani
1Department of Basic and Applied Biology, Faculty of Science, L'Aquila University, L'Aquila, Italy. fernanda.amicarelli@univaq.it
Abstract:
Methylglyoxal is a reactive dicarbonyl compound endogenously produced mainly from glycolytic intermediates. Recent research indicates that methylglyoxal is a potent growth inhibitor and genotoxic agent. The antiproliferative activity of methylglyoxal has been investigated for pharmacological application in cancer chemotherapy. However, various cells are not equally sensitive to methylglyoxal toxicity. Therefore, it would be important to establish the cellular factors responsible for the different cell-type specific response to methylglyoxal injury, in order to avoid the risk of failure of a therapy based on increasing the intracellular level of methylglyoxal. To this purpose, we comparatively evaluated the signaling transduction pathway elicited by methylglyoxal in human glioblastoma (ADF) and neuroblastoma (SH-SY 5Y) cells. Results show that methylglyoxal causes early and extensive reactive oxygen species generation in both cell lines. However, SH-SY 5Y cells show higher sensitivity to methylglyoxal challenge due to a defective antioxidant and detoxifying ability that, preventing these cells from an efficient scavenging action, elicits extensive caspase-9 dependent apoptosis. These data emphasize the pivotal role of antioxidant and detoxifying systems in determining the grade of sensitivity of cells to methylglyoxal.
Insights
Methylglyoxal, a cancer chemotherapy agent, shows varied cell sensitivity. Defective antioxidant systems in neuroblastoma cells increase methylglyoxal toxicity, leading to apoptosis.
Area of Science:
- Biochemistry
- Cell Biology
- Toxicology
Background:
- Methylglyoxal (MGO) is an endogenous reactive dicarbonyl compound.
- MGO exhibits potent antiproliferative and genotoxic properties, with potential in cancer chemotherapy.
- Cellular sensitivity to MGO toxicity varies, necessitating identification of responsible factors.
Purpose of the Study:
- To investigate the cellular factors influencing differential responses to methylglyoxal.
- To compare the methylglyoxal-induced signaling pathways in human glioblastoma (ADF) and neuroblastoma (SH-SY 5Y) cells.
Main Methods:
- Comparative analysis of methylglyoxal-elicited signaling transduction pathways.
- Evaluation of reactive oxygen species generation and apoptosis induction.
Main Results:
- Methylglyoxal induced early and extensive reactive oxygen species in both cell lines.
- SH-SY 5Y cells demonstrated higher sensitivity to methylglyoxal.
- Defective antioxidant and detoxifying abilities in SH-SY 5Y cells led to enhanced caspase-9 dependent apoptosis.
Conclusions:
- Antioxidant and detoxifying systems are crucial in determining cellular sensitivity to methylglyoxal.
- Understanding these systems is vital for optimizing methylglyoxal-based cancer therapies.
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