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An epigenetically controlled PML/Slit axis at the root of cell migration in both normal and neoplastic cells in the CNS

机译:在中枢神经系统中正常细胞和赘生性细胞中在细胞迁移的根部有表观遗传控制的PML /狭缝轴

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摘要

In the central nervous system (CNS), regulation of nuclear function has been implicated in the control of cell cycle and migratory processes during neurogenesis. Alterations of these processes can lead to neoplastic transformation of neural stem cells (NSCs) and glioblastoma multiforme (GBM). The ability of GBM cells to migrate through the brain parenchyma represents a key factor underlying GBM aggressiveness and resistance to treatment. Notably, brain cancer cells use the same routes utilized by neuroblasts/immature neurons and NSCs, suggesting a neurobiological root of brain cancer migration. However, our understanding of potentially common mechanisms regulating cell migration/invasion during neurogenesis and brain tumourigenesis remains limited. Our previous work has implicated the Promyelocytic Leukaemia protein (PML), the essential component of the PML nuclear body (PML-NB), in regulation of embryonic neurogenesis via its ability to control proliferation in NSCs. We set out to investigate the role of PML in adult neurogenesis and GBM. Loss of PML leads to impaired NSC and neuroblast migration and to a smaller olfactory bulb in the adult mouse brain. A similar migration defect is observed in primary GBM cells where PML expression has been knocked down. Mechanistically, PML controls cell migration in both mouse NSCs and primary GBM cells via down-regulation of Slit genes, which are key regulators of axon guidance during development. Changes in Slits transcription upon PML kd are caused by global reduction of the repressive H3K27me3 epigenetic mark. This is associated with its redistribution to nuclear lamina-associated domains (LADs). Finally, PML controls tumor invasion and survival in an orthotopic animal model and inversely correlates with patient prognosis in GBM. Taken together, these findings support a model whereby PML-mediated modifications of chromatin structure and function regulate cell migration during normal neurogenesis and brain tumorigenesis, suggesting a neurobiological root of brain cancer invasion.
机译:在中枢神经系统(CNS)中,核功能的调节与神经发生过程中细胞周期和迁移过程的控制有关。这些过程的改变可导致神经干细胞(NSC)和多形胶质母细胞瘤(GBM)的肿瘤转化。 GBM细胞迁移穿过脑实质的能力代表了GBM侵略性和对治疗的抵抗力的关键因素。值得注意的是,脑癌细胞使用的神经母细胞/未成熟神经元和NSC所使用的途径相同,这暗示着脑癌迁移的神经生物学根源。然而,我们对调节神经发生和脑肿瘤发生过程中细胞迁移/侵袭的潜在共同机制的理解仍然有限。我们以前的工作已经暗示了早幼粒细胞白血病蛋白(PML)是PML核体(PML-NB)的重要组成部分,通过其控制NSCs增殖的能力来调节胚胎神经发生。我们着手研究PML在成人神经发生和GBM中的作用。 PML的丧失会导致成年小鼠大脑中NSC和神经母细胞迁移受损,并产生较小的嗅球。在原代GBM细胞中观察到类似的迁移缺陷,其中PML表达被敲低。从机制上讲,PML通过下调Slit基因来控制小鼠NSC和原代GBM细胞中的细胞迁移,Slit基因是发育过程中轴突引导的关键调节因子。 PML kd上Slits转录的变化是由抑制性H3K27me3表观遗传标记的整体降低引起的。这与其重新分配到核层相关域(LAD)有关。最后,PML在原位动物模型中控制肿瘤的侵袭和存活,并与GBM患者的预后成反比。综上所述,这些发现支持了一个模型,该模型通过PML介导的染色质结构和功能修饰来调节正常神经发生和脑肿瘤发生过程中的细胞迁移,提示脑癌入侵的神经生物学根源。

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