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Mitochondrial β-Carotene 9',10' Oxygenase Modulates Prostate Cancer Growth via NF-κB Inhibition: A
Xiaoming Gong1, Raju Marisiddaiah2, Susan Zaripheh3
1Department of Pediatrics, Texas Tech University Health Sciences Center, Paul L. Foster School of Medicine, El Paso, Texas.
Abstract:
Despite numerous inquiries into protective roles of lycopene in prostate cancer prevention or therapy, little is known about mechanisms by which lycopene or its metabolites inhibit prostate cancer. The enzyme β-carotene 9',10'-oxygenase (BCO2), which catalyzes asymmetric cleavage of several carotenoids, is the principal regulator of lycopene metabolism, but the range of BCO2 biological functions is incompletely understood. This study investigated expression and functional roles of BCO2 in human prostate cancer. Expression of the bco2 gene is dramatically decreased in prostate cancer tissue and in a range of prostate cancer cell lines as compared with nonneoplastic prostate tissue and normal prostatic epithelial cells, respectively. Inhibition of DNA methyltransferase activity restored bco2 expression in prostate cancer cell lines tested. Treatment with lycopene or its metabolite, apo-10-lycopenal, also increased bco2 expression and reduced cell proliferation in androgen-sensitive cell lines, but lycopene neither altered bco2 expression nor cell growth in androgen-resistant cells. Notably, restoring bco2 expression in prostate cancer cells inhibited cell proliferation and colony formation, irrespective of lycopene exposure. Exogenous expression of either wild-type BCO2 or a mutant (enzymatically inactive) BCO2 in prostate cancer cells reduced NF-κB activity and decreased NF-κB nuclear translocation and DNA binding. Together, these results indicate epigenetic loss of BCO2 expression is associated with prostate cancer progression. Moreover, these findings describe previously unanticipated functions of BCO2 that are independent of its enzymatic role in lycopene metabolism.
Implications:
This study identifies BCO2 as a tumor suppressor in prostate cancer. BCO2-mediated inhibition of NF-κB signaling implies BCO2 status is important in prostate cancer progression. Mol Cancer Res; 14(10); 966-75. ©2016 AACR.
Insights
The enzyme beta-carotene 9
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- Lycopene's role in prostate cancer is unclear.
- Beta-carotene 9',10'-oxygenase (BCO2) regulates lycopene metabolism.
- BCO2's broader functions are not fully understood.
Purpose of the Study:
- Investigate BCO2 expression and function in prostate cancer.
- Determine BCO2's role in prostate cancer progression.
- Explore BCO2's mechanisms of action.
Main Methods:
- Analyzed bco2 gene expression in prostate tissues and cell lines.
- Utilized DNA methyltransferase inhibitors and lycopene treatments.
- Assessed cell proliferation, colony formation, and NF-κB signaling.
- Expressed wild-type and mutant BCO2 in prostate cancer cells.
Main Results:
- bco2 expression is significantly decreased in prostate cancer.
- DNA methylation inhibition and lycopene restored bco2 expression in some cells.
- Restoring bco2 inhibited cell proliferation and colony formation.
- BCO2 reduced NF-κB activity independently of its enzymatic function.
Conclusions:
- Epigenetic silencing of BCO2 is linked to prostate cancer progression.
- BCO2 acts as a tumor suppressor in prostate cancer.
- BCO2 inhibits prostate cancer via NF-κB signaling, independent of lycopene metabolism.
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