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NQO1 suppresses NF-κB-p300 interaction to regulate inflammatory mediators associated with prostate tumorigenesis
Dinesh Thapa1, Peng Meng1, Roble G Bedolla1
1Department of Urology, School of Medicine, University of Texas Health Science Center at San Antonio, San Antonio Texas.
Abstract:
NADPH reductase
Nad(P)H:
quinone oxidoreductase 1 (NQO1) is needed to maintain a cellular pool of antioxidants, and this enzyme may contribute to tumorigenesis on the basis of studies in NQO1-deficient mice. In this work, we sought deeper insights into how NQO1 contributes to prostate carcinogenesis, a setting in which oxidative stress and inflammation are established contributors to disease development and progression. In the TRAMP mouse model of prostate cancer, NQO1 was highly expressed in tumor cells. NQO1 silencing in prostate cancer cells increased levels of nuclear IKKα and NF-κB while decreasing the levels of p53, leading to interactions between NF-κB and p300 that reinforce survival signaling. Gene expression analysis revealed upregulation of a set of immune-associated transcripts associated with inflammation and tumorigenesis in cells in which NQO1 was attenuated, with IL8 confirmed functionally in cell culture as one key NQO1-supported cytokine. Notably, NQO1-silenced prostate cancer cells were more resistant to androgen deprivation. Furthermore, NQO1 inhibition increased migration, including under conditions of androgen deprivation. These results reveal a molecular link between NQO1 expression and proinflammatory cytokine signaling in prostate cancer. Furthermore, our results suggest that altering redox homeostasis through NQO1 inhibition might promote androgen-independent cell survival via opposing effects on NF-κB and p53 function.
Insights
Quinone oxidoreductase 1 (NQO1) impacts prostate cancer by influencing inflammation and cell survival. Inhibiting NQO1 promotes tumor growth and resistance to treatment, suggesting NQO1 is a potential therapeutic target.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Quinone oxidoreductase 1 (NQO1) maintains antioxidant balance and may influence tumorigenesis.
- Oxidative stress and inflammation are key factors in prostate cancer development and progression.
Purpose of the Study:
- To investigate the role of NQO1 in prostate carcinogenesis.
- To understand how NQO1 affects cellular signaling, inflammation, and treatment resistance in prostate cancer.
Main Methods:
- Utilized the TRAMP mouse model for prostate cancer.
- Performed NQO1 silencing in prostate cancer cells.
- Analyzed protein levels (IKKα, NF-κB, p53), gene expression (immune-associated transcripts), and cell behavior (migration, androgen deprivation resistance).
Main Results:
- NQO1 was highly expressed in TRAMP mouse prostate tumors.
- NQO1 silencing increased nuclear IKKα and NF-κB, decreased p53, and promoted NF-κB/p300 interactions for survival signaling.
- NQO1 inhibition upregulated immune-associated transcripts, including IL8, and enhanced prostate cancer cell migration.
- NQO1-silenced cells showed increased resistance to androgen deprivation.
Conclusions:
- NQO1 expression is linked to proinflammatory cytokine signaling in prostate cancer.
- Altering redox homeostasis via NQO1 inhibition may promote androgen-independent survival by modulating NF-κB and p53.
- NQO1 plays a significant role in prostate cancer progression and treatment resistance.
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