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Rewired DDR-TGF-β-β-catenin-PD-L1 axis accelerates progression and shapes therapy in human papillomavirus-driven
Wei Liu1,2,3, Shanmei Chen1, Liwei Wang1
1Hunan Cancer Hospital, Affiliated Hospital of Xiangya Medical School, Central South University, Changsha, Hunan, China.
Abstract:
Understanding Human papillomavirus (HPV) oncogenic mechanisms is essential for developing preventive and therapeutic strategies and overcoming therapy resistance in HPV-related cancers. These challenges may arise from the ability of high-risk HPV to subvert host tumor suppressors such as p53 and Rb, and to drive oncogenesis through homologous recombination deficiency (HRD) and multi-network dysregulation. Mechanistically, HPV exerts context-dependent effects on the host DNA damage response (DDR). During episomal replication, E6/E7 activate DDR and recruit BRCA1/RAD51 to replication foci to support viral replication without significantly compromising host HR repair. Upon viral integration, however, sustained E6/E7 expression drives HRD and shifts DNA repair toward error-prone end joining, generating genomic instability that fuels malignant transformation. These alterations are most clearly established in cervical cancer, whereas evidence in HPV-positive non-cervical cancer is more variable and requires further context-specific validation. In parallel, HPV E6/E7 antagonize transforming growth factor-β (TGF-β)-mediated tumor suppression and, potentially through FAT Atypical Cadherin 4 (FAT4) down-regulation, engage Wnt/β-catenin signaling. The resultant elevation of nuclear β-catenin induces programmed death-ligand 1 (PD-L1) expression promotes immune evasion, stemness, and invasiveness. Of note, while the DDR-TGF-β-β-catenin-PD-L1 axis is backed by substantial evidence in HPV-related cancers, certain connections within this pathway are extrapolated from non-HPV models or general pathway biology and are explicitly denoted as such in the main text. With residual p53 activity, HRD may confer initial sensitivity to DNA-damaging agents, but resistance frequently develops-a pattern reminiscent of the initial response followed by acquired resistance observed with immunotherapies in HPV-related cancers. Integrating these mechanistic insights, we propose ablative therapies (e.g., ablation, photodynamic therapy, surgery) for cervical intraepithelial neoplasia (CIN), and for advanced or resistant disease, a synthetic-lethality framework combining genotoxic therapies with DDR inhibitors, targeting DDR-TGF-β-β-catenin-PD-L1 axis, and antiviral approaches. The proposed therapeutic strategies, however, should be interpreted with caution, as their evidence base varies across tumor types and warrants further investigation.
Insights
Human papillomavirus (HPV) alters DNA damage response (DDR) and signaling pathways, driving cancer development and therapy resistance. Understanding these oncogenic mechanisms is key to developing new HPV cancer treatments.
Area of Science:
- Oncology
- Virology
- Molecular Biology
Background:
- High-risk Human Papillomavirus (HPV) subverts tumor suppressors like p53 and Rb, causing homologous recombination deficiency (HRD) and genomic instability.
- HPV's impact on the DNA damage response (DDR) is context-dependent, supporting viral replication during episomal stages but promoting HRD upon integration.
- HPV E6/E7 proteins interfere with TGF-β signaling and activate Wnt/β-catenin, leading to PD-L1 expression, immune evasion, and stemness.
Purpose of the Study:
- To elucidate the oncogenic mechanisms of HPV, focusing on its interaction with host DNA damage response (DDR) and signaling pathways.
- To understand how HPV contributes to therapy resistance in HPV-related cancers.
- To propose novel therapeutic strategies based on mechanistic insights.
Main Methods:
- Review and integration of existing research on HPV oncogenesis, DDR, TGF-β, Wnt/β-catenin signaling, and PD-L1 expression.
- Analysis of HPV's context-dependent effects on DNA repair pathways (episomal replication vs. integration).
- Examination of therapeutic implications, including synthetic lethality and targeting specific molecular axes.
Main Results:
- HPV integration leads to HRD, genomic instability, and resistance to therapies.
- The DDR-TGF-β-β-catenin-PD-L1 axis is crucial in HPV-related cancers, promoting immune evasion and stemness.
- Initial sensitivity to genotoxic agents in HRD tumors with residual p53 activity is often followed by acquired resistance.
Conclusions:
- Targeting the DDR-TGF-β-β-catenin-PD-L1 axis and employing antiviral strategies offer potential therapeutic avenues for HPV-related cancers.
- Synthetic lethality approaches combining genotoxic therapies with DDR inhibitors are promising for advanced or resistant disease.
- Ablative therapies may be suitable for early-stage lesions like cervical intraepithelial neoplasia (CIN).
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