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gRASping the redox lever to modulate cancer cell fate signaling
Chuan Han Jonathan Foo1, Shazib Pervaiz2
1Department of Physiology, YLL School of Medicine, National University of Singapore (NUS), Singapore; NUS Graduate School of Integrative Sciences and Engineering, NUS, Singapore.
Abstract:
RAS proteins are critical regulators of signaling networks controlling diverse cellular functions such as cell proliferation and survival and its mutation are among the most powerful oncogenic drivers in human cancers. Despite intense efforts, direct RAS-targeting strategies remain elusive due to its "undruggable" nature. To that end, bulk of the research efforts has been directed towards targeting upstream and/or downstream of RAS signaling. However, the therapeutic efficacies of these treatments are limited in the long run due to the acquired drug resistance in RAS-driven cancers. Interestingly, recent studies have uncovered a potential role of RAS in redox-regulation as well as the interplay between ROS and RAS-associated signaling networks during process of cancer initiation and progression. More specifically, these studies provide ample evidence to implicate RAS as a redox-rheostat, manipulating ROS levels to provide a redox-milieu conducive for carcinogenesis. Importantly, the understanding of RAS-ROS interplay could provide us with novel targetable vulnerabilities for designing therapeutic strategies. In this review, we provide a brief summary of the advances in the field to illustrate the dual role of RAS in redox-regulation and its implications in RAS signaling outcomes and also emerging redox-based strategies to target RAS-driven cancers.
Insights
RAS proteins regulate cell growth, and their mutations drive cancer. Targeting the interplay between RAS signaling and reactive oxygen species (ROS) offers new therapeutic strategies for overcoming drug resistance in cancer.
Area of Science:
- Oncology
- Molecular Biology
- Redox Biology
Background:
- RAS proteins are key regulators of cell signaling, proliferation, and survival.
- Mutations in RAS are major drivers of human cancers, but direct targeting remains challenging.
- Current therapies targeting RAS pathways often face acquired drug resistance.
Purpose of the Study:
- To review the dual role of RAS in redox regulation.
- To explore the interplay between RAS signaling and reactive oxygen species (ROS).
- To highlight emerging redox-based strategies for targeting RAS-driven cancers.
Main Methods:
- Literature review of recent advances in RAS signaling and redox biology.
- Analysis of studies implicating RAS in controlling ROS levels.
- Examination of therapeutic strategies targeting the RAS-ROS axis.
Main Results:
- RAS proteins act as a redox-rheostat, modulating ROS to promote carcinogenesis.
- The interplay between RAS and ROS is crucial in cancer initiation and progression.
- Understanding this interplay reveals novel vulnerabilities for cancer therapy.
Conclusions:
- RAS plays a significant role in redox regulation, impacting cancer signaling.
- Targeting the RAS-ROS axis presents a promising avenue for novel cancer therapeutics.
- Redox-based strategies offer potential to overcome resistance in RAS-driven cancers.
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