PO.CL12.03 · 临床研究
HMA诱导的癌基因重激活作为MDS疾病进展的驱动因素
HMA-induced oncogene reactivation as a driver of disease progression in MDS
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
去甲基化药物(HMAs),包括azacitidine和decitabine,被广泛用于高危骨髓增生异常综合征(MDS)及部分AML,然而多数患者最终复发,且HMA治疗失败后的生存率仍然极差。长期以来,HMAs被认为主要通过DNA去甲基化重新激活肿瘤抑制基因而发挥作用。然而,我们近期的研究表明,HMAs反常地上调了癌胚基因SALL4,且这种诱导与较差的总生存期密切相关,挑战了现有范式。新出现的数据提示,其他癌-生殖系抗原基因(CGAGs)可能同样被重新激活,产生促进耐药和白血病进展的致癌程序。为研究这一现象,我们采用RNA-seq和甲基化分析对HMA治疗前后配对的患者骨髓样本进行了分析。我们观察到治疗后SALL4及多个CGAGs(包括PIWIL2、HORMAD1和DDX43)持续上调且启动子低甲基化。这种诱导在疾病进展或治疗失败的患者中更为显著。在MDS细胞模型中的功能研究显示,强制表达SALL4或选定的CGAGs可增强增殖、损害髓系分化并降低对HMAs的敏感性。相反,shRNA介导的敲低减轻了这些表型。CRISPR-DiR驱动的SALL4位点特异性去甲基化重现了HMA相关的激活并赋予了增殖优势,证实了启动子去甲基化在SALL4重激活中的因果作用。我们接下来评估了与该通路相关的治疗易感性。使用一种新研发的小分子SALL4降解剂(SH6)进行治疗,可降低SALL4高表达模型的存活率并逆转HMA诱导的耐药表型。与单药相比,HMA + SH6联合治疗显示出增强的细胞毒性。正在进行的研究正将该方法扩展至其他CGAG靶点,并利用单细胞转录组和表观遗传学分析绘制耐药亚群图谱。总之,这些发现揭示HMA治疗可触发致癌CGAG程序的意外激活,从而驱动MDS进展。它们支持了一个新的机制框架,即治疗诱导的表观遗传重新唤醒促进恶性适应性,并将SALL4和CGAGs确定为高价值的生物标志物和治疗靶点。这项工作推动了配套诊断策略以及将HMAs与靶向降解剂配对的联合方案的开发,以防止治疗诱导的疾病加速并改善患者预后。
查看英文原文 English abstract
Hypomethylating agents (HMAs), including azacitidine and decitabine, are widely used for high-risk myelodysplastic syndromes (MDS) and selected AML, yet most patients eventually relapse, and survival after HMA failure remains dismal. HMAs were long assumed to function primarily by reactivating tumor suppressor genes through DNA demethylation. However, our recent work demonstrated that HMAs paradoxically upregulate the oncofetal gene SALL4, and that this induction strongly correlates with inferior overall survival, challenging existing paradigms. Emerging data suggest that additional cancer-germline antigen genes (CGAGs) may be similarly reactivated, generating oncogenic programs that facilitate resistance and leukemic progression. To investigate this, we profiled paired pre- and post-HMA patient marrow samples using RNA-seq and methylation analysis. We observed consistent post-treatment upregulation and promoter hypomethylation of SALL4 and multiple CGAGs, including PIWIL2, HORMAD1, and DDX43. Induction was more pronounced in patients with progression or treatment failure. Functional studies in MDS cell models revealed that forced expression of SALL4 or selected CGAGs enhanced proliferation, impaired myeloid differentiation, and reduced sensitivity to HMAs. Conversely, shRNA-mediated depletion mitigated these phenotypes. CRISPR-DiR-driven locus-specific demethylation of SALL4 recapitulated HMA-associated activation and conferred a proliferative advantage, confirming a causal role for promoter demethylation in SALL4 reactivation. We next evaluated therapeutic vulnerabilities associated with this pathway. Treatment with a newly developed small-molecule SALL4 degrader (SH6) reduced viability in SALL4-high models and reversed HMA-induced resistance phenotypes. Combination treatment with HMA + SH6 demonstrated enhanced cytotoxicity compared to either agent alone. Ongoing studies are expanding this approach to additional CGAG targets and mapping resistant subpopulations using single-cell transcriptomic and epigenetic profiling. Together, these findings reveal that HMA therapy can trigger unintended activation of oncogenic CGAG programs that drive MDS progression. They support a new mechanistic framework in which treatment-induced epigenetic reawakening promotes malignant fitness, and they identify SALL4 and CGAGs as high-value biomarkers and therapeutic targets. This work motivates development of companion diagnostic strategies and combination regimens pairing HMAs with targeted degraders to prevent therapy-induced disease acceleration and improve patient outcomes.
利益披露 Disclosure
J. Kwon, None..
Y. Liu, None..
M. A. Bassal, None..
J. A. Thoms, None..
E. Fabiani, None..
J. Pimanda, None..
M. T. Voso, None..
D. G. Tenen, None..
L. Chai, None.