首页> 外文期刊>Mutation Research: International Journal on Mutagenesis, Chromosome Breakage and Related Subjects >Radiation-induced epigenetic alterations after low and high LET irradiations.
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Radiation-induced epigenetic alterations after low and high LET irradiations.

机译:低和高LET辐射后辐射诱导的表观遗传学改变。

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Epigenetics, including DNA methylation and microRNA (miRNA) expression, could be the missing link in understanding radiation-induced genomic instability (RIGI). This study tests the hypothesis that irradiation induces epigenetic aberrations, which could eventually lead to RIGI, and that the epigenetic aberrations induced by low linear energy transfer (LET) irradiation are different than those induced by high LET irradiations. GM10115 cells were irradiated with low LET X-rays and high LET iron (Fe) ions and evaluated for DNA damage, cell survival and chromosomal instability. The cells were also evaluated for specific locus methylation of nuclear factor-kappa B (NFkappaB), tumor suppressor in lung cancer 1 (TSLC1) and cadherin 1 (CDH1) gene promoter regions, long interspersed nuclear element 1 (LINE-1) and Alu repeat element methylation, CpG and non-CpG global methylation and miRNA expression levels. Irradiated cells showed increased micronucleus induction and cell killing immediately following exposure, but were chromosomally stable at delayed times post-irradiation. At this same delayed time, alterations in repeat element and global DNA methylation and miRNA expression were observed. Analyses of DNA methylation predominantly showed hypomethylation, however hypermethylation was also observed. We demonstrate that miRNA expression levels can be altered after X-ray irradiation and that these miRNA are involved in chromatin remodeling and DNA methylation. A higher incidence of epigenetic changes was observed after exposure to X-rays than Fe ions even though Fe ions elicited more chromosomal damage and cell killing. This distinction is apparent at miRNA analyses at which only three miRNA involved in two major pathways were altered after high LET irradiations while six miRNA involved in five major pathways were altered after low LET irradiations. This study also shows that the irradiated cells acquire epigenetic changes suggesting that epigenetic aberrations may arise in the cell without initiating chromosomal instability.
机译:表观遗传学,包括DNA甲基化和microRNA(miRNA)表达,可能是理解辐射诱导的基因组不稳定性(RIGI)的缺失环节。这项研究检验了以下假设:辐照会诱发表观遗传畸变,最终可能导致RIGI;低线性能量转移(LET)辐照引起的表观遗传畸变与高LET辐照引起的表观畸变不同。用低LET X射线和高LET铁(Fe)离子辐照GM10115细胞,并评估其DNA损伤,细胞存活率和染色体不稳定性。还评估了细胞的核因子-κB(NFkappaB),肺癌1(TSLC1)和钙黏着蛋白1(CDH1)基因启动子区域,长穿散的核元件1(LINE-1)和Alu的特定基因位甲基化重复元素甲基化,CpG和非CpG总体甲基化以及miRNA表达水平。辐照后的细胞在暴露后立即显示出增加的微核诱导和细胞杀灭,但在辐照后的延迟时间处染色体稳定。在相同的延迟时间,观察到重复元件和总体DNA甲基化以及miRNA表达的改变。 DNA甲基化的分析主要显示低甲基化,但是也观察到高甲基化。我们证明,X射线照射后可以改变miRNA的表达水平,并且这些miRNA参与染色质重塑和DNA甲基化。尽管Fe离子引起更多的染色体损伤和细胞杀伤,但暴露于X射线后表观遗传变化的发生率比Fe离子高。这种区别在miRNA分析中很明显,在高LET照射后,只有两个参与主要途径的miRNA发生了变化,而在低LET照射后才改变了参与五个主要途径的六个miRNA。该研究还表明,受辐照的细胞获得表观遗传学变化,这表明在不引发染色体不稳定的情况下,细胞中可能会出现表观遗传学畸变。

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