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Low-dose radiation-induced responses: focusing on epigenetic regulation.

机译:低剂量辐射诱导的反应:关注表观遗传调控。

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PURPOSE: With the widespread use of ionising radiation, the risks of low-dose radiation have been increasingly highlighted for special attention. This review introduces the potential role of epigenetic elements in the regulation of the effects of low-dose radiation. MATERIALS AND METHODS: The related literature has been analysed according to the topics of DNA methylation, histone modifications, chromatin remodelling and non-coding RNA modulation in low-dose radiation responses. RESULTS: DNA methylation and radiation can reciprocally regulate effects, especially in the low-dose radiation area. The relationship between histone methylation and radiation mainly exists in the high-dose radiation area; histone deacetylase inhibitors show a promising application to enhance radiation sensitivity, both in the low-dose and high-dose areas; phosphorylated histone 2 AX (H2AX) shows a low sensitivity with 1-15 Gy irradiation as compared with lower dose radiation; and histone ubiquitination plays an important role in DNA damage repair mechanisms. Moreover, chromatin remodelling has an integral role in the repair of DNA double-strand breaks and the response of chromatin to ionising radiation. Finally, the effect of radiation on microRNA expression seems to vary according to cell type, radiation dose, and post-irradiation time point. CONCLUSION: Small advances have been made in the understanding of epigenetic regulation of low-dose radiation responses. Many questions and blind spots deserve to be investigated. Many new epigenetic elements will be identified in low-dose radiation responses, which may give new insights into the mechanisms of radiation response and their exploitation in radiotherapy.
机译:目的:随着电离辐射的广泛使用,低剂量辐射的风险日益受到特别关注。这篇综述介绍了表观遗传元素在调节低剂量辐射影响中的潜在作用。材料与方法:根据低剂量放射反应中DNA甲基化,组蛋白修饰,染色质重塑和非编码RNA调节等主题对相关文献进行了分析。结果:DNA甲基化和辐射可以相互调节作用,尤其是在低剂量辐射区域。组蛋白甲基化与放射线的关系主要存在于高剂量放射线区域。组蛋白脱乙酰基酶抑制剂在低剂量和高剂量区域均显示出增强辐射敏感性的有前途的应用。与较低剂量的辐射相比,磷酸化的组蛋白2 AX(H2AX)在1-15 Gy辐射下显示出较低的灵敏度;组蛋白泛素化在DNA损伤修复机制中起着重要作用。此外,染色质重塑在修复DNA双链断裂以及染色质对电离辐射的响应中具有不可或缺的作用。最后,放射线对microRNA表达的影响似乎根据细胞类型,放射线剂量和辐照后的时间点而变化。结论:在低剂量辐射反应的表观遗传调控的理解方面取得了很小的进展。许多问题和盲点值得调查。低剂量放射反应中将鉴定出许多新的表观遗传学元素,这可能会为放射反应的机理及其在放射治疗中的利用提供新的见解。

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