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miR-217-5p纳米微核糖核酸通过抑制EZH2和表观遗传重编程抑制胶质母细胞瘤生长并增强电离辐射的效果。

miR-217-5p NanomiRs Inhibit Glioblastoma Growth and Enhance Effects of Ionizing Radiation via EZH2 Inhibition and Epigenetic Reprogramming.

作者信息

Korleski Jack, Sudhir Sweta, Rui Yuan, Caputo Christopher A, Sall Sophie, Johnson Amanda L, Khela Harmon S, Madhvacharyula Tanmaya, Rasamsetty Anisha, Li Yunqing, Lal Bachchu, Zhou Weiqiang, Smith-Connor Karen, Tzeng Stephany Y, Green Jordan J, Laterra John, Lopez-Bertoni Hernando

机构信息

Hugo W. Moser Research Institute at Kennedy Krieger, Baltimore, MD 21205, USA.

Department of Internal Medicine, Mayo Clinic, Rochester, MN 55905, USA.

出版信息

Cancers (Basel). 2024 Dec 30;17(1):80. doi: 10.3390/cancers17010080.

Abstract

: CSCs are critical drivers of the tumor and stem cell phenotypes of glioblastoma (GBM) cells. Chromatin modifications play a fundamental role in driving a GBM CSC phenotype. The goal of this study is to further our understanding of how stem cell-driving events control changes in chromatin architecture that contribute to the tumor-propagating phenotype of GBM. : We utilized computational analyses to identify a subset of clinically relevant genes that were predicted to be repressed in a Polycomb repressive complex 2 (PRC2)-dependent manner in GBM upon induction of stem cell-driving events. These associations were validated in patient-derived GBM neurosphere models using state-of-the-art molecular techniques to express, silence, and measure microRNA (miRNA) and gene expression changes. Advanced Poly(β-amino ester) nanoparticle formulations (PBAEs) were used to deliver miRNAs in vivo to orthotopic human GBM tumor models. : We show that glioma stem cell (GSC) formation and tumor propagation involve the crosstalk between multiple epigenetic mechanisms, resulting in the repression of the miRNAs that regulate PRC2 function and histone H3 lysine 27 tri-methylation (H3K27me3). We also identified miR-217-5p as an EZH2 regulator repressed in GSCs and showed that miR-217-5p reconstitution using advanced nanoparticle formulations re-activates the PRC2-repressed genes, inhibits GSC formation, impairs tumor growth, and enhances the effects of ionizing radiation in an orthotopic model of GBM. : These findings suggest that inhibiting PRC2 function by targeting EZH2 with miR-217-5p advanced nanoparticle formulations could have a therapeutic benefit in GBM.

摘要

癌症干细胞是胶质母细胞瘤(GBM)细胞肿瘤和干细胞表型的关键驱动因素。染色质修饰在驱动GBM癌症干细胞表型方面发挥着重要作用。本研究的目的是进一步了解干细胞驱动事件如何控制染色质结构的变化,这些变化有助于GBM的肿瘤增殖表型。

我们利用计算分析来确定一组临床相关基因,这些基因预计在诱导干细胞驱动事件时,在GBM中以多梳抑制复合物2(PRC2)依赖的方式被抑制。使用先进的分子技术在患者来源的GBM神经球模型中验证了这些关联,以表达、沉默和测量微小RNA(miRNA)和基因表达的变化。先进的聚(β-氨基酯)纳米颗粒制剂(PBAEs)被用于在体内将miRNA递送至原位人类GBM肿瘤模型。

我们发现,胶质瘤干细胞(GSC)的形成和肿瘤增殖涉及多种表观遗传机制之间的相互作用,导致调节PRC2功能和组蛋白H3赖氨酸27三甲基化(H3K27me3)的miRNA受到抑制。我们还确定miR-217-5p是一种在GSC中受到抑制的EZH2调节剂,并表明使用先进的纳米颗粒制剂重建miR-217-5p可重新激活PRC2抑制的基因,抑制GSC形成,损害肿瘤生长,并增强电离辐射在GBM原位模型中的作用。

这些发现表明,使用miR-217-5p先进纳米颗粒制剂靶向EZH2来抑制PRC2功能可能对GBM具有治疗益处。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7ed6/11719642/9a8e14567330/cancers-17-00080-g001.jpg

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