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首页> 外文期刊>PLoS One >Replication stress and FOXM1 drive radiation induced genomic instability and cell transformation
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Replication stress and FOXM1 drive radiation induced genomic instability and cell transformation

机译:复制应力和FOXM1驱动辐射诱导基因组不稳定性和细胞变换

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In contrast to the vast majority of research that has focused on the immediate effects of ionizing radiation, this work concentrates on the molecular mechanism driving delayed effects that emerge in the progeny of the exposed cells. We employed functional protein arrays to identify molecular changes induced in a human bronchial epithelial cell line (HBEC3-KT) and osteosarcoma cell line (U2OS) and evaluated their impact on outcomes associated with radiation induced genomic instability (RIGI) at day 5 and 7 post-exposure to a 2Gy X-ray dose, which revealed replication stress in the context of increased FOXM1b expression. Irradiated cells had reduced DNA replication rate detected by the DNA fiber assay and increased DNA resection detected by RPA foci and phosphorylation. Irradiated cells increased utilization of homologous recombination-dependent repair detected by a gene conversion assay and DNA damage at mitosis reflected by RPA positive chromosomal bridges, micronuclei formation and 53BP1 positive bodies in G1, all known outcomes of replication stress. Interference with the function of FOXM1, a transcription factor widely expressed in cancer, employing an aptamer, decreased radiation-induced micronuclei formation and cell transformation while plasmid-driven overexpression of FOXM1b was sufficient to induce replication stress, micronuclei formation and cell transformation.
机译:与绝大多数研究具有专注于电离辐射的直接影响的绝大部分研究,这项工作浓缩了驱动暴露细胞后代出现的延迟效应的分子机制。我们使用功能性蛋白阵列以鉴定人支气管上皮细胞系(HBEC3-KT)和骨肉瘤细胞系(U2OS)中诱导的分子变化,并评估它们对第5天和第7天和第7天诱导的辐射诱导基因组不稳定(RIGI)相关的结果的影响 - 曝光到2Gy X射线剂量,在增加FoxM1B表达的背景下揭示了复制应力。辐照细胞通过DNA纤维测定检测到DNA复制率降低,并通过RPA焦点和磷酸化检测的DNA切除增加。辐照细胞利用通过基因转化测定和通过RPA阳性染色体桥,微核形成和G1中的53bp1阳性体反射的分配的DNA损伤来提高使用同源重组依赖性修复的使用和DNA损伤,所有已知的复制应力结果。干扰FOXM1的功能,在癌症中广泛表达的转录因子,采用适体,降低辐射诱导的微核形成和细胞转化,同时FOXM1B的质粒驱动过表达足以诱导复制应力,微核形成和细胞转化。

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