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Reconstructing and Reprogramming the Tumor-Propagating Potential of Glioblastoma Stem-like Cells

机译:重构和重编程胶质母细胞瘤干细胞样细胞的肿瘤传播潜能

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摘要

Developmental fate decisions are dictated by master transcription factors (TFs) that interact with cis-regulatory elements to direct transcriptional programs. Certain malignant tumors may also depend on cellular hierarchies reminiscent of normal development but superimposed on underlying genetic aberrations. In glioblastoma (GBM), a subset of stem-like tumorpropagating cells (TPCs) appears to drive tumor progression and underlie therapeutic resistance yet remain poorly understood. Here, we identify a core set of neurodevelopmental TFs (POU3F2, SOX2, SALL2, and OLIG2) essential for GBM propagation. These TFs coordinately bind and activate TPC-specific regulatory elements and are sufficient to fully reprogram differentiated GBM cells to "induced" TPCs, recapitulating the epigenetic landscape and phenotype of native TPCs. We reconstruct a network model that highlights critical interactions and identifies candidate therapeutic targets for eliminating TPCs. Our study establishes the epigenetic basis of a developmental hierarchy in GBM, provides detailed insight into underlying gene regulatory programs, and suggests attendant therapeutic strategies.
机译:发展命运的决定由与顺式调节元件相互作用以指导转录程序的主转录因子(TF)决定。某些恶性肿瘤也可能取决于使人联想到正常发育但叠加在潜在遗传畸变上的细胞层次。在胶质母细胞瘤(GBM)中,一部分干细胞样肿瘤增殖细胞(TPC)似乎驱动肿瘤进展并成为治疗耐药性的基础,但仍知之甚少。在这里,我们确定了GBM传播必不可少的一组神经发育TF(POU3F2,SOX2,SALL2和OLIG2)。这些TF协调结合并激活TPC特异的调控元件,足以将分化的GBM细胞完全重编程为“诱导的” TPC,从而概括了天然TPC的表观遗传格局和表型。我们重建了一个网络模型,该模型突出了关键的相互作用并确定了消除TPC的候选治疗靶标。我们的研究建立了GBM中发育层次的表观遗传基础,提供了对潜在基因调控程序的详细了解,并提出了相关的治疗策略。

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