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Published on: May 12, 2020
Oxidative Stress and Autophagy as Key Targets in Melanoma Cell Fate
Elisabetta Catalani1, Matteo Giovarelli2, Silvia Zecchini2
1Department for Innovation in Biological, Agro-Food and Forest Systems (DIBAF), Università degli Studi della Tuscia, Largo dell'Università snc, 01100 Viterbo, Italy.
Abstract:
Melanoma originates from the malignant transformation of melanocytes and is one of the most aggressive forms of cancer. The recent approval of several drugs has increased the chance of survival although a significant subset of patients with metastatic melanoma do not show a long-lasting response to these treatments. The complex cross-talk between oxidative stress and the catabolic process autophagy seems to play a central role in all aspects of melanoma pathophysiology, from initiation to progression and metastasis, including drug resistance. However, determining the fine role of autophagy in cancer death and in response to redox disruption is still a fundamental challenge in order to advance both basic and translational aspects of this field. In order to summarize the interactions among reactive oxygen and nitrogen species, autophagy machinery and proliferation/growth/death/apoptosis/survival, we provide here a narrative review of the preclinical evidence for drugs/treatments that modulate oxidative stress and autophagy in melanoma cells. The significance and the potential for pharmacological targeting (also through multiple and combination approaches) of these two different events, which can contribute independently or simultaneously to the fate of melanoma, may help to define new processes and their interconnections underlying skin cancer biology and unravel new reliable approaches.
Insights
Oxidative stress and autophagy are key in melanoma progression and drug resistance. Targeting these pathways offers new therapeutic strategies for metastatic melanoma patients.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Melanoma, a highly aggressive skin cancer, has limited long-term treatment responses in many metastatic patients.
- The interplay between oxidative stress and autophagy is critical in melanoma development, progression, metastasis, and drug resistance.
Purpose of the Study:
- To review preclinical evidence on drugs modulating oxidative stress and autophagy in melanoma.
- To explore the complex interactions among reactive oxygen/nitrogen species, autophagy, and melanoma cell fate (proliferation, survival, death).
Main Methods:
- Narrative review of existing preclinical studies.
- Analysis of interactions between oxidative stress, autophagy, and melanoma pathophysiology.
- Evaluation of therapeutic targets and combination strategies.
Main Results:
- Oxidative stress and autophagy significantly influence melanoma initiation, progression, metastasis, and drug resistance.
- Modulating these pathways presents potential therapeutic avenues.
- Combined targeting approaches may enhance treatment efficacy.
Conclusions:
- Understanding the intricate roles of oxidative stress and autophagy is crucial for advancing melanoma treatment.
- Pharmacological targeting of these pathways, individually or in combination, holds promise for overcoming drug resistance and improving patient outcomes.
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