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Protein kinase C signaling and oxidative stress
1Department of Cell and Neurobiology, Keck School of Medicine, University of Southern California, Los Angeles, CA, USA.
Abstract:
Oxidative stress is involved in the pathogenesis of various degenerative diseases including cancer. It is now recognized that low levels of oxidants can modify cell-signaling proteins and that these modifications have functional consequences. Identifying the target proteins for redox modification is key to understanding how oxidants mediate pathological processes such as tumor promotion. These proteins are also likely to be important targets for chemopreventive antioxidants, which are known to block signaling induced by oxidants and to induce their own actions. Various antioxidant preventive agents also inhibit PKC-dependent cellular responses. Therefore, PKC is a logical candidate for redox modification by oxidants and antioxidants that may in part determine their cancer-promoting and anticancer activities, respectively. PKCs contain unique structural features that are susceptible to oxidative modification. The N-terminal regulatory domain contains zinc-binding, cysteine-rich motifs that are readily oxidized by peroxide. When oxidized, the autoinhibitory function of the regulatory domain is compromised and, consequently, cellular PKC activity is stimulated. The C-terminal catalytic domain contains several reactive cysteines that are targets for various chemopreventive antioxidants such as selenocompounds, polyphenolic agents such as curcumin, and vitamin E analogues. Modification of these cysteines decreases cellular PKC activity. Thus the two domains of PKC respond differently to two different type of agents: oxidants selectively react with the regulatory domain, stimulate cellular PKC, and signal for tumor promotion and cell growth. In contrast, antioxidant chemopreventive agents react with the catalytic domain, inhibit cellular PKC activity, and thus interfere with the action of tumor promoters.
Insights
Oxidative stress influences cancer development. Protein kinase C (PKC) is redox-modified by oxidants, promoting cancer, and by antioxidants, inhibiting cancer, revealing its dual role in cell signaling.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Oxidative stress is implicated in cancer pathogenesis.
- Redox modifications of cell-signaling proteins by oxidants and antioxidants have functional consequences.
- Identifying redox-modified proteins is crucial for understanding cancer promotion and prevention.
Purpose of the Study:
- To investigate protein kinase C (PKC) as a target for redox modification by oxidants and antioxidants.
- To elucidate the differential effects of oxidants and antioxidants on PKC activity and its role in cancer.
Main Methods:
- Analysis of PKC structure for susceptibility to oxidative modification.
- Investigating the effects of oxidants (e.g., peroxide) on the regulatory domain of PKC.
- Examining the interaction of antioxidants (e.g., selenocompounds, curcumin, vitamin E analogues) with the catalytic domain of PKC.
Main Results:
- Oxidants selectively modify the N-terminal regulatory domain of PKC, leading to stimulated activity and tumor promotion.
- Antioxidants target reactive cysteines in the C-terminal catalytic domain, decreasing PKC activity.
- PKC exhibits distinct responses to oxidants and antioxidants, influencing cell growth and tumor promotion.
Conclusions:
- PKC is a key redox-sensitive signaling protein in cancer.
- Oxidant-induced stimulation of PKC contributes to tumor promotion.
- Antioxidant-mediated inhibition of PKC offers a potential strategy for cancer chemoprevention.
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