PO.MCB03.03 · 分子与细胞生物学

WEE1通过抑制GSK3β强化C-MYC驱动的致癌程序

WEE1 reinforces C-MYC driven oncogenic programs through GSK3ß inhibition

编号 563 展板 1 时间 4/19 02:00–05:00 区域 Section 24 主讲 krishnapriya Thangaretnam
分会场 Tumor Cell Plasticity, Microenvironment, and Stress-Response Pathways
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作者与单位 Authors & Affiliations

Krishnapriya Thangaretnam1, Islam MD Obaidul2, Jialun Lyu2, Zhenzhen Zhang1, Lei Chen2, Farah Ballout1, Heng Lu1, Dunfa Peng3, Alexander I. Zaika4, Wael El-Rifai5, Zheng Chen6

1University of Miami Miller School of Medicine, Miami, FL,2Surgery, University of Miami Miller School of Medicine, Miami, FL,3University of Miami, Miami, FL,4Professor of Surgery & Cancer Biology, University of Miami, Miami, FL,5Director, Surgical Oncology Research, University of Miami, Miami, FL,6Surgery, University of Miami, Miami, FL

摘要 Abstract

中文摘要
背景:食管腺癌(EAC)仍是一种致命的恶性肿瘤,5年生存率低于20%。核激酶WEE1是G2/M检查点的关键调控因子,而致癌转录因子c-MYC在约70%的人类癌症中失调,难以直接靶向。鉴定控制MYC稳定性的上游调控因子提供了一种替代治疗策略。在此,我们发现WEE1通过抑制GSK3β强化MYC驱动的致癌程序,而抑制WEE1促进蛋白酶体介导的MYC降解。 方法与结果:跨TCGA和GEO数据集的基因集富集分析显示,在WEE1高表达的EAC肿瘤中MYC靶基因特征持续富集。正常食管和EAC组织中的免疫荧光显示WEE1与C-MYC之间强烈过表达且呈正相关,这在EAC细胞系中相较于非癌和Barrett食管细胞也得到验证。WEE1的基因敲低或药物抑制降低了MYC蛋白水平、转录活性和下游基因表达,这通过报告基因实验、qRT-PCR和RNA测序得到证实。放线菌酮追踪实验显示WEE1抑制后MYC半衰期缩短,而蛋白酶体抑制剂MG132挽救了MYC降解。 机制上,WEE1抑制激活了GSK3β——一种MYC泛素化和蛋白酶体周转所需的激酶。相反,WEE1过表达通过提高抑制性GSK3β-S9磷酸化稳定MYC。激酶失活的WEE1突变体未能稳定MYC,表明这是一种依赖催化活性的机制。邻近连接实验进一步证明WEE1抑制后GSK3β-MYC相互作用增加。对892种FDA批准药物的高通量筛选鉴定出Panobinostat作为WEE1抑制剂MK1775的协同伴侣。该联合显著抑制了人EAC PDX来源类器官的生长,并在体内抑制EAC PDX模型的肿瘤进展。 结论:这些发现定义了一个WEE1-GSK3β-MYC信号轴,其中WEE1稳定MYC并维持MYC驱动的致癌程序。WEE1抑制激活GSK3β,促进蛋白酶体介导的MYC降解。WEE1抑制与Panobinostat的联合代表了针对MYC驱动EAC的一种有前景的治疗方法。
查看英文原文 English abstract
Background: Esophageal adenocarcinoma (EAC) remains a lethal malignancy with a 5-year survival rate below 20%. The nuclear kinase WEE1 is a key regulator of the G2/M checkpoint, whereas the oncogenic transcription factor c-MYC, dysregulated in ~70% of human cancers, is challenging to target directly. Identifying upstream regulators that control MYC stability offers an alternative therapeutic strategy. Here, we discovered that WEE1 reinforces MYC-driven oncogenic programs by inhibiting GSK3beta, and that inhibition of WEE1 promotes proteasome-mediated MYC degradation. Methods and Results: Gene set enrichment analysis across TCGA and GEO datasets showed consistent enrichment of MYC target gene signatures in WEE1-high EAC tumors. Immunofluorescence in normal esophagus and EAC tissues demonstrated strong overexpression and positive correlation between WEE1 and C-MYC, which was also validated in EAC cell lines compared to non-cancerous and Barrett's esophagus cells. Genetic knockdown or pharmacologic inhibition of WEE1 reduced MYC protein levels, transcriptional activity, and downstream gene expression, as confirmed by reporter assays, qRT-PCR, and RNA sequencing. Cycloheximide chase assays revealed a shortened MYC half-life upon WEE1 inhibition, whereas the proteasome inhibitor MG132 rescued MYC degradation. Mechanistically, WEE1 inhibition activated GSK3beta, a kinase required for MYC ubiquitination and proteasomal turnover. Conversely, WEE1 overexpression stabilized MYC by elevating inhibitory GSK3beta-S9 phosphorylation. A kinase-dead WEE1 mutant failed to stabilize MYC, indicating a catalytic-activity-dependent mechanism. Proximity ligation assays further demonstrated increased GSK3beta-MYC interaction following WEE1 inhibition. A high-throughput screen of 892 FDA-approved drugs identified Panobinostat as a synergistic partner of the WEE1 inhibitor MK1775. The combination significantly suppressed the growth of human EAC PDX-derived organoids and inhibited tumor progression in EAC PDX models in vivo. Conclusion: These findings define a WEE1-GSK3beta-MYC signaling axis in which WEE1 stabilizes MYC and sustains MYC-driven oncogenic programs. WEE1 inhibition activates GSK3beta, promoting proteasome-mediated MYC degradation. The combination of WEE1 inhibition and Panobinostat represents a promising therapeutic approach for MYC-driven EAC.
利益披露 Disclosure
K. Thangaretnam, None.. I. MD Obaidul, None.. J. Lyu, None.. Z. Zhang, None.. L. Chen, None.. H. Lu, None.. D. Peng, None.. A. I. Zaika, None.. W. El-Rifai, None.. Z. Chen, None.

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