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Cytoplasmic WEE1 Promotes Resistance to PD-1 Blockade Through Hyperactivation of the HSP90A/TCL1/AKT Signaling Axis
Suyeon Kim1, Hyo-Jung Lee2, Seungho Lee2
1Korea University, Graduate School of Medicine, Seoul, Korea (South), Republic of.
Abstract:
Immune checkpoint blockade (ICB) has revolutionized the therapeutic landscape across various cancer types. However, the emergence of resistance to ICB therapy limits its clinical application. Therefore, it is necessary to better understand immune-resistance mechanisms that could be targeted by actionable drugs and important to identify predictive markers for selecting patients. In this study, by analyzing transcriptomic data from patients treated with PD-1 blockade and tumor models refractory to anti-PD-1 therapy, we identified WEE1 as a resistance factor conferring cancer stem cell-like properties as well as immune-refractory phenotypes to tumor cells. WEE1 is transcriptionally upregulated by stemness factor NANOG and predominantly localized in the cytoplasm, not the nucleus, following AKT-dependent S642 phosphorylation in immune-refractory tumor cells. Mechanistically, cytoplasmic WEE1 drove AKT hyperactivation via the HSP90A/TCL1A/AKT auto-amplification loop and upregulated the expression of refractory factors such as CYCLIN A for hyperproliferation and MCL-1 for resistance to T-cell killing. Of note, CXCL10 was downregulated, resulting in insufficient T-cell infiltration. The NANOG/WEE1/AKT axis was also conserved in various human cancers. Importantly, targeting WEE1 with a clinically relevant inhibitor sensitized NANOG+ immune-refractory tumors to ICB, reinvigorating antitumor immunity by disrupting the HSP90A/TCL1A/AKT loop. Thus, our findings demonstrate the oncogenic role of cytoplasmic WEE1 in immune-refractoriness and conferring cancer stem cell-like properties of tumor cells through AKT hyperactivation and provide a rationale for combining a WEE1 inhibitor to control anti-PD-1 therapy-refractory tumors.
Insights
WEE1 protein drives cancer stem cell traits and resistance to PD-1 blockade therapy by activating the AKT pathway. Targeting WEE1 with inhibitors can overcome this resistance and enhance antitumor immunity.
Area of Science:
- Oncology
- Immunology
- Molecular Biology
Background:
- Immune checkpoint blockade (ICB) therapy, particularly anti-PD-1, has transformed cancer treatment.
- Resistance to ICB limits its effectiveness, necessitating research into underlying mechanisms and predictive markers.
Purpose of the Study:
- To identify mechanisms of resistance to anti-PD-1 therapy.
- To investigate the role of WEE1 in conferring immune-refractory and cancer stem cell-like phenotypes.
- To explore the therapeutic potential of targeting WEE1 in combination with ICB.
Main Methods:
- Analysis of transcriptomic data from patients treated with PD-1 blockade and refractory tumor models.
- Investigated WEE1 localization and regulation by NANOG and AKT.
- Examined the role of the HSP90A/TCL1A/AKT loop in WEE1-mediated resistance.
- Assessed the efficacy of a WEE1 inhibitor in combination with ICB in preclinical models.
Main Results:
- WEE1 was identified as a resistance factor, upregulated by NANOG and activated by AKT phosphorylation.
- Cytoplasmic WEE1 promotes AKT hyperactivation, leading to upregulation of CYCLIN A and MCL-1, and downregulation of CXCL10.
- The NANOG/WEE1/AKT axis is conserved across various human cancers.
- Targeting WEE1 sensitized immune-refractory tumors to ICB, restoring antitumor immunity.
Conclusions:
- Cytoplasmic WEE1 plays a critical role in immune-refractoriness and cancer stem cell properties via AKT hyperactivation.
- The NANOG/WEE1/AKT axis represents a potential therapeutic target for overcoming ICB resistance.
- Combining WEE1 inhibitors with anti-PD-1 therapy offers a promising strategy for treating refractory tumors.
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