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Published on: June 21, 2021
The redox regulation of thiol dependent signaling pathways in cancer
1School of Chemistry, Building F11, University of Sydney, NSW, Australia. giles_g@chem.usyd.edu.au
Abstract:
Reactive oxygen species (ROS) play a central role as second messengers in many signal transduction pathways, where they can post-translationally modify proteins via the oxidation of redox sensitive cysteine residues. The range of cellular processes under redox regulation is extensive and includes both the proliferative and apoptotic pathways. Control of the cellular redox environment is therefore essential for normal physiological function and perturbations to this redox balance are characteristic of many pathological states. Oxidative stress is particularly prevalent in cancer, where many malignant cell types possess an abnormal redox metabolism involving down-regulation of antioxidant enzymes and impaired mitochondrial function. This provides a major opportunity to design therapeutic strategies to selectively target cancer cells based on their redox profile. This review will provide a background to this emerging field by summarizing the known redox biochemistry of ROS signaling. The mechanisms of ROS generation by the action of oxidoreductases and nitric oxide synthases will be discussed in conjunction with the cell's major antioxidant defenses, with special emphasis placed on the subcellular location of these redox reactions. The effect of ROS on proliferation and apoptosis will be examined by looking at interactions with transcription factors and the Akt, TNF and MAPK signaling pathways. The review will also outline the major differences in redox metabolism between cancer cells and their non-malignant counterparts. Although the full extent of the ROS regulation of signaling pathways is only beginning to be mapped, early indications are that this paradigm will provide new therapeutic targets for cancer therapy.
Insights
Reactive oxygen species (ROS) are crucial signaling molecules. Targeting cancer cells via their unique redox metabolism offers a promising therapeutic strategy.
Area of Science:
- Cellular Biology
- Biochemistry
- Oncology
Background:
- Reactive oxygen species (ROS) act as second messengers in signal transduction pathways, regulating cellular processes like proliferation and apoptosis.
- Cellular redox balance is vital for physiological function; its disruption characterizes many diseases, notably cancer.
- Cancer cells often exhibit altered redox metabolism, including reduced antioxidant enzyme activity and impaired mitochondrial function.
Purpose of the Study:
- To review the redox biochemistry of ROS signaling.
- To discuss ROS generation mechanisms and cellular antioxidant defenses.
- To explore the role of ROS in cancer cell redox metabolism and therapeutic targeting.
Main Methods:
- Literature review of redox biochemistry and signaling pathways.
- Analysis of ROS generation by oxidoreductases and nitric oxide synthases.
- Examination of ROS interactions with transcription factors and key signaling pathways (Akt, TNF, MAPK).
Main Results:
- ROS post-translationally modify proteins through cysteine oxidation, impacting proliferation and apoptosis.
- Differences in redox metabolism between cancer and normal cells present therapeutic opportunities.
- ROS signaling pathways are increasingly understood, revealing potential cancer treatment targets.
Conclusions:
- Understanding ROS signaling and cellular redox environments is key to developing novel cancer therapies.
- Targeting the specific redox profiles of cancer cells offers a selective therapeutic approach.
- Further mapping of ROS regulation in signaling pathways will uncover new therapeutic targets.
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