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ECTO-NOX target for the anticancer isoflavene phenoxodiol
D James Morré1, P J Chueh, Kader Yagiz
1Department of Medicinal Chemistry and Molecular Pharmacology, Purdue University, West Lafayette, IN 47907, USA. morre@pharmacy.purdue.edu
Abstract:
Phenoxodiol, a synthetic isoflavene with clinical efficacy in the management of ovarian and other forms of human cancer, blocked the activity of a cancer-specific and growth-related cell surface ECTO-NOX protein with both oxidative (hydroquinone) and protein disulfide-thiol interchange activity designated tNOX. Purified recombinant tNOX bound phenoxodiol with high affinity (Kd of 50 nM). The tNOX protein appeared to be both necessary and sufficient for the cancer-specific cytotoxicity of phenoxodiol. Growth inhibition of fibroblasts from embryos of mice expressing a tNOX transgene, but not from wild-type mice, was inhibited by phenoxodiol followed by apoptosis. Both the oxidative and protein disulfide-thiol interchange activities that alternate to generate the complex set of oscillations with a period length of 22 min (24 min for the constitutive counterpart CNOX) that characterize ECTO-NOX proteins respond to phenoxodiol. Oxidation of NADH or reduced coenzyme Q10 was rapidly blocked by phenoxodiol. In contrast, the protein disulfidethiol interchange activity measured either by the restoration of activity to scrambled and inactive RNase or from the cleavage of dithiodipyridine (EC50 of 50 nM) was inhibited progressively over an interval of 60 min that spanned three cycles of activity. Inhibition of the latter paralleled the inhibition of cell enlargement and the consequent inability of inhibited cells to initiate traverse of the cell cycle. Activities of constitutive ECTO-NOX (CNOX) forms of either cancer or noncancer cells were unaffected by phenoxodiol to help explain how the cytotoxic effects of phenoxodiol may be restricted to cancer cells.
Insights
Phenoxodiol effectively inhibits cancer cell growth by blocking the cancer-specific ECTO-NOX (tNOX) protein, which is crucial for tumor cell proliferation and survival. This targeted action explains its efficacy in treating various cancers.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Phenoxodiol is a synthetic isoflavene demonstrating clinical efficacy in ovarian and other human cancers.
- Cancer cells exhibit unique cell surface proteins, including ECTO-NOX (tNOX) proteins, involved in growth and oxidative activity.
Purpose of the Study:
- To investigate the mechanism by which phenoxodiol exerts its anti-cancer effects.
- To determine the role of the tNOX protein in phenoxodiol's cytotoxicity.
Main Methods:
- Recombinant tNOX protein binding assays with phenoxodiol.
- Phenoxodiol treatment of mouse fibroblasts expressing a tNOX transgene.
- Measurement of tNOX oxidative and protein disulfide-thiol interchange activities.
- Assessment of phenoxodiol's effect on constitutive ECTO-NOX (CNOX) activity.
Main Results:
- Phenoxodiol binds with high affinity to tNOX (Kd of 50 nM) and inhibits its activity.
- Phenoxodiol induces growth inhibition and apoptosis in tNOX-expressing cells.
- Both oxidative and disulfide-thiol interchange activities of tNOX are responsive to phenoxodiol.
- Constitutive CNOX activity in non-cancer cells remains unaffected by phenoxodiol.
Conclusions:
- The tNOX protein is essential for phenoxodiol's cancer-specific cytotoxicity.
- Phenoxodiol's targeted inhibition of tNOX activity offers a potential therapeutic strategy for cancer treatment.
- The selective action on tNOX explains phenoxodiol's restricted effects on cancer cells.
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