a Key Laboratory of Ion Beam Bioengineering, Hefei Institutes of Physical Science, Chinese Academy of Sciences, Hefei, China.
b Henan Key Laboratory of Ion Beam Bioengineering, School of Physical Engineering, Zhengzhou University, Zhengzhou, China; and.
Radiat Res. 2018 Feb;189(2):156-164. doi: 10.1667/RR14883.1. Epub 2017 Dec 5.
p53 is a crucial tumor suppressor and plays an important role in cell cycle arrest, DNA damage repair, promotion of cell senescence and apoptosis, prevention of DNA damage and maintaining genomic stability and integrity. It has been reported that p53 might also be related to radiation sensitivity, for which the involved effects and processes could be further examined biochemically at the molecular level. In this study, we explored a new spectroscopic approach to probe the radiation-induced biological effects related to p53. Infrared microspectroscopy was used to detect the metabolic changes related to p53 under particle radiation. After alpha-particle irradiation of HCT116 cells (p53, p53), cell cycle arrest, DNA damage and lipid peroxidation in the cancer cells were observed using Fourier-transform infrared (FTIR) spectroscopy and microspectroscopy imaging. A remarkable difference in radiosensitivity between the two genotypes of cells was observed as well. This work provides a biochemical analysis of the p53-related radiation effects in cells and demonstrates the potential usefulness of FTIR microspectroscopy in the field of radiation research.
p53 是一种重要的肿瘤抑制因子,在细胞周期阻滞、DNA 损伤修复、促进细胞衰老和凋亡、防止 DNA 损伤以及维持基因组稳定性和完整性方面发挥重要作用。有报道称,p53 可能与辐射敏感性有关,其涉及的影响和过程可以在分子水平上通过生物化学进一步研究。在这项研究中,我们探索了一种新的光谱方法来探测与 p53 相关的辐射诱导的生物学效应。我们使用红外显微镜来检测在粒子辐射下与 p53 相关的代谢变化。用傅里叶变换红外(FTIR)光谱和显微镜成像观察到 HCT116 细胞(p53、p53)在 α 粒子照射下的细胞周期阻滞、DNA 损伤和脂质过氧化。还观察到两种细胞基因型之间明显的辐射敏感性差异。这项工作为细胞中 p53 相关辐射效应提供了生化分析,并证明了 FTIR 显微镜在辐射研究领域的潜在有用性。