NQO1-Mediated Anoikis Resistance and Immune Evasion Define a High-Risk Multi-Omic Subtype for Precision Management of T1 High-Grade Bladder Cancer
- Adv Sci (Weinh). 2026 Jun;13(36):e23605. doi: 10.1002/advs.202523605.
- 1. China National Center for Bioinformation, Beijing, China.
- 2. Senior Department of Urology, Chinese PLA General Hospital, Beijing, China.
- 3. Beijing Institute of Genomics, Chinese Academy of Sciences, Beijing, China.
- 4. University of Chinese Academy of Sciences, Beijing, China.
- 5. Department of Urology, Peking University First Hospital, Beijing, China.
- 6. Institute of Urology, Peking University, Beijing, China.
- 7. National Urological Cancer Center, Beijing Key Laboratory of Urogenital Diseases (Male) Molecular Diagnosis and Treatment Center, Beijing, China.
- 8. Chinese Institutes for Medical Research, Beijing, China.
- 9. Bioscience and Biomedical Engineering Thrust, Systems Hub, The Hong Kong University of Science and Technology (Guangzhou), Guangzhou, Guangdong, China.
- 10. Technical University of Denmark, Department of Health and Technology, Section for Bioinformatics, Cancer Systems Biology, Lyngby, Denmark.
- 11. Danish Cancer Institute, Cancer Structural Biology, Copenhagen, Denmark.
- 12. Institute for Regenerative Biology and Medicine, Chinese Institutes for Medical Research, Beijing, China.
T1 high-grade (T1HG) bladder Cancer represents an aggressive subset of non-muscle-invasive bladder Cancer (NMIBC) with frequent Bacillus Calmette-Guérin (BCG) failure and a high risk of progression, yet current models inadequately guide treatment selection between early cystectomy and bladder preservation. Integrative multi-omics profiling of 147 tumors identifies two clinically distinct subtypes. A high-risk subtype (T1HG1) is defined by coupled anoikis resistance and immune evasion, exhibiting markedly increased progression rates (>80% vs. <20%), poor BCG responsiveness, and a higher likelihood of cystectomy. NAD(P)H:quinone oxidoreductase 1 (NQO1) is identified as a central regulator linking tumor-intrinsic survival to suppression of macrophage-T cell crosstalk. Elevated NQO1 promotes anoikis resistance and reprograms macrophages toward an immunosuppressive phenotype, limiting CXCL9-mediated T cell recruitment and facilitating immune escape. Pharmacologic inhibition of NQO1 using skullcapflavone II restores apoptotic sensitivity and enhances cisplatin efficacy, resulting in significant tumor suppression with favorable tolerability in preclinical models. A multi-omic machine learning framework for T1HG UCB, termed T1HG-UCBguider, integrating clinical, transcriptomic, and methylation features, enables individualized risk stratification and treatment guidance. Validation across seven independent cohorts, demonstrates robust performance in identifying patients at risk of progression and BCG failure. These findings establish a biologically grounded framework for precision management of T1HG bladder Cancer.
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Research Areas: Cancer