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Updated: Jun 28, 2026

In Vivo Imaging of Reactive Oxygen Species in a Murine Wound Model
Published on: November 17, 2018
Reactive oxygen species: an Achilles' heel of melanoma?
John P Fruehauf1, Valerie Trapp
1University of California Irvine, Chao Family Comprehensive Cancer Center, CA, USA. fruehau@uci.edu
Abstract:
The successful treatment of melanoma has been hampered by the unique biology of this cancer. Fortunately, research to further our understanding of how melanoma cells differ from normal tissues has led to the discovery of potential new avenues of attack. One promising strategy relates to targeting the excess free radicals produced by melanomas. Melanocyte transformation into cancer is associated with significant structural alterations in the melanosome. In addition to pigment production, melanosomes also protect the cell by scavenging free radicals generated by sunlight and cellular metabolism. In melanoma, the disrupted and disorganized melanosome structure reverses this process. Melanosomes found in melanoma produce free radicals, such as hydrogen peroxide, furthering DNA damage. Melanosome generation of reactive oxygen species (ROS), in tandem with those generated by cancer metabolism, activate cellular signal transduction pathways that prevent cell death. ROS activation of proto-oncogene pathways in melanoma contributes to their resistance to chemotherapy. Fortunately, it may be possible to target these free radicals, just as Paris was able to successfully target Achilles' heel. The use of agents that block ROS scavenging, such as ATN-224 and disulfiram, have been explored clinically. A recent randomized Phase II trial with elesclomol, an agent that generates ROS, in combination with paclitaxel led to improved patient survival, suggesting that this may be a viable approach to advance the treatment of melanoma.
Insights
Targeting melanoma
Area of Science:
- Oncology
- Biochemistry
- Cell Biology
Background:
- Melanoma treatment is challenging due to its unique biology.
- Melanoma cells exhibit altered melanosomes that produce harmful free radicals.
- These reactive oxygen species (ROS) promote cancer growth and chemotherapy resistance.
Purpose of the Study:
- To explore targeting free radicals in melanoma treatment.
- To investigate the role of ROS in melanoma progression and drug resistance.
Main Methods:
- Review of research on melanosome structure and function in melanoma.
- Analysis of clinical trials involving agents that modulate ROS.
- Examination of the impact of ROS-generating agents on melanoma cell survival.
Main Results:
- Disrupted melanosomes in melanoma generate ROS, causing DNA damage.
- ROS activate signaling pathways that enhance melanoma cell survival and chemoresistance.
- Clinical trials with ROS-modulating agents show potential for improved patient outcomes.
Conclusions:
- Targeting ROS represents a promising therapeutic strategy for melanoma.
- Agents like elesclomol, which generate ROS, may enhance melanoma treatment efficacy.
- Further research into ROS-targeted therapies could advance melanoma care.
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