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Human NQO1 as a Selective Target for Anticancer Therapeutics and Tumor Imaging
A E M Adnan Khan1, Viswanath Arutla1, Kalkunte S Srivenugopal1
1Department of Pharmaceutical Sciences, Jerry H. Hodge School of Pharmacy, Texas Tech University Health Sciences Center, 1406 Amarillo Research Bldg., Rm. 1102, Amarillo, TX 79106, USA.
Abstract:
Human NAD(P)H-quinone oxidoreductase1 (HNQO1) is a two-electron reductase antioxidant enzyme whose expression is driven by the NRF2 transcription factor highly active in the prooxidant milieu found in human malignancies. The resulting abundance of NQO1 expression (up to 200-fold) in cancers and a barely detectable expression in body tissues makes it a selective marker of neoplasms. NQO1 can catalyze the repeated futile redox cycling of certain natural and synthetic quinones to their hydroxyquinones, consuming NADPH and generating rapid bursts of cytotoxic reactive oxygen species (ROS) and H2O2. A greater level of this quinone bioactivation due to elevated NQO1 content has been recognized as a tumor-specific therapeutic strategy, which, however, has not been clinically exploited. We review here the natural and new quinones activated by NQO1, the catalytic inhibitors, and the ensuing cell death mechanisms. Further, the cancer-selective expression of NQO1 has opened excellent opportunities for distinguishing cancer cells/tissues from their normal counterparts. Given this diagnostic, prognostic, and therapeutic importance, we and others have engineered a large number of specific NQO1 turn-on small molecule probes that remain latent but release intense fluorescence groups at near-infrared and other wavelengths, following enzymatic cleavage in cancer cells and tumor masses. This sensitive visualization/quantitation and powerful imaging technology based on NQO1 expression offers promise for guided cancer surgery, and the reagents suggest a theranostic potential for NQO1-targeted chemotherapy.
Insights
Human NAD(P)H-quinone oxidoreductase1 (NQO1) is an antioxidant enzyme overexpressed in cancers. Its selective activation by quinones generates cytotoxic ROS, offering a tumor-specific therapeutic and diagnostic strategy.
Area of Science:
- Biochemistry
- Oncology
- Molecular Biology
Background:
- Human NAD(P)H-quinone oxidoreductase1 (NQO1) is an antioxidant enzyme upregulated in malignancies.
- NQO1 expression is driven by the NRF2 transcription factor in a prooxidant cancer environment.
- Elevated NQO1 levels (up to 200-fold) in cancer distinguish neoplastic tissue from normal body tissues.
Purpose of the Study:
- To review quinones activated by NQO1, their inhibitors, and cell death mechanisms.
- To explore the diagnostic, prognostic, and therapeutic potential of NQO1 in cancer.
- To discuss NQO1-targeted small molecule probes for cancer imaging and therapy.
Main Methods:
- Review of literature on NQO1 substrates, inhibitors, and cell death pathways.
- Analysis of NQO1's role in cancer-specific bioactivation of quinones.
- Examination of engineered NQO1-activated fluorescent probes for cancer detection.
Main Results:
- NQO1 catalyzes futile redox cycling of quinones, generating cytotoxic reactive oxygen species (ROS) and H2O2.
- Elevated NQO1 in tumors enables tumor-specific quinone bioactivation for therapeutic strategies.
- Engineered NQO1-activated probes provide sensitive near-infrared fluorescence for cancer cell/tissue visualization.
Conclusions:
- NQO1's cancer-selective expression is a valuable marker for diagnosis and prognosis.
- NQO1-mediated quinone bioactivation presents a promising tumor-specific therapeutic strategy.
- NQO1-targeted probes offer theranostic potential for guided surgery and chemotherapy.

