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Mechanisms of carcinogenesis: focus on oxidative stress and electron transfer
1Department of Chemistry, San Diego State University, San Diego, CA92182-1030, USA. jgenoves@sundown.sdsu.edu
Abstract:
For more than half a century, numerous proposals have been advanced for the mode of action of carcinogens. This review presents a wide array of evidence that implicates oxidative stress (OS) in many aspects of oncology, including: formation of reactive oxygen species (ROS) by the major classes of carcinogens (as well as minor ones), cancer stages, oncogene activation, aging, genetic and infectious illnesses, nutrition, and the role of antioxidants (AOs). Although diverse origins pertain, including both endogenous and exogenous agents, ROS are frequently generated by redox cycling via electron transfer (ET) groups, e.g., quinones (or phenolic precursors), metal complexes (or complexors), aromatic nitro compounds (or reduced products), and conjugated imines (or iminium species). We believe it is not coincidental that these functionalities are often found in carcinogens or their metabolites. The pervasive aspects of DNA binding by ultimate carcinogens, and mutations caused by ROS are treated. Often, ROS are implicated in more conventional rationales, such as oncogenes. A multi-faceted approach to mechanisms appears to be the most logical. The OS unifying theme represents an approach which is able to rationalize the diverse data associated with carcinogenesis. Because this theoretical framework aids in the understanding of cancer initiation, it can serve as a useful tool in combating cancer, particularly in relation to prevention. Significantly, the electron transfer--oxidative stress (ET-OS) scenario can also be applied to many drug categories, toxins, enzymes, and hormones.
Insights
Oxidative stress (OS) plays a key role in cancer development, driven by reactive oxygen species (ROS) generated through electron transfer (ET) processes. Understanding this ET-OS link aids in cancer prevention strategies.
Area of Science:
- Oncology
- Biochemistry
- Molecular Biology
Background:
- Carcinogen action mechanisms have been debated for decades.
- Oxidative stress (OS) is increasingly recognized for its role in various cancer aspects.
- Reactive oxygen species (ROS) are implicated in cancer initiation and progression.
Purpose of the Study:
- To review evidence linking oxidative stress to carcinogenesis.
- To explore the role of electron transfer (ET) in ROS generation by carcinogens.
- To present OS as a unifying theme in cancer research.
Main Methods:
- Literature review of evidence implicating OS in oncology.
- Analysis of ROS generation mechanisms via electron transfer (ET) groups.
- Examination of carcinogen functionalities and their relation to ROS.
Main Results:
- Diverse carcinogens generate ROS through ET mechanisms (e.g., quinones, metal complexes).
- ROS contribute to DNA damage, mutations, and oncogene activation.
- OS is implicated across various cancer stages, aging, and related illnesses.
Conclusions:
- The electron transfer-oxidative stress (ET-OS) model provides a unifying framework for understanding carcinogenesis.
- This framework aids in comprehending cancer initiation and developing prevention strategies.
- The ET-OS concept extends to understanding drug actions, toxins, and hormonal effects.