在长期暴露于基因毒性致癌物后,人类HepaRG细胞的突变积累
Xiaoqing Guo1, Ji-Eun Seo1, Jaime Miranda-Colon1
1Division of Genetic and Molecular Toxicology, National Center for Toxicological Research, U.S. Food and Drug Administration, Jefferson, Arkansas, USA.
概括
在HepaRG细胞中长时间接触N-二甲基胺 (NDMA) 会增加突变频率,特别是在3D培养物中. 较长的测试时间改善了化学风险评估的体外基因毒性评估.
科学领域:
- 毒理学和药理学
- 细胞生物学和遗传学
背景情况:
- 准确的化学风险评估需要模仿真实世界的体外模型.
- 之前的研究显示在短期基因毒性测试中细胞毒性有限.
研究的目的:
- 在7天和14天暴露于N-二甲基胺 (NDMA) 后,研究二维和三维HepaRG细胞的突变积累.
- 评估治疗时间和培养模型 (2D与3D) 对NDMA诱导的基因毒性的影响.
主要方法:
- 在2D和3D球体中培养的HepaRG细胞在7天和14天内暴露在不同度的NDMA中.
- 一种多端点方法测量了DNA损伤,微核形成和突变频率.
- 用于定量分析的基准度 (BMC) 建模.
主要成果:
- NDMA暴露导致DNA损伤和突变频率的度和持续时间的增加.
- 暴露14天引起的突变频率高于暴露7天,细胞毒性有限 (<30%).
- 与二维培养相比,3D HepaRG球体的突变频率显著更高,BMC值更低.
- 观察到的主要突变是T→C转变.
结论:
- 长时间的暴露 (14天) 提高了HepaRG细胞体内基因毒性测试的敏感性.
- 与二维培养相比,3D HepaRG球体提供了更敏感的模型来检测NDMA诱导的突变.
- 这些发现支持使用更长的暴露时间和3D模型进行更准确的化学风险评估.
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