癌变·畸变·突变 ›› 2009, Vol. 21 ›› Issue (3): 222-225.doi: 10.3969/j.issn.1004-616x.2009.03.016

• 论著 • 上一篇    下一篇

硫酸铍对人胚肺成纤维细胞的细胞毒性和遗传毒性

王光俊, 刘志宏, 安晓丹, 张晓宇, 张 勇, 刘贺荣, 朱玲勤, 马小梅   

  1. 宁夏医科大学劳动卫生与环境卫生教研室,宁夏 银川 750004
  • 收稿日期:2008-09-12 修回日期:2009-02-03 出版日期:2009-05-30 发布日期:2009-05-30

Cytotoxicity and Genotoxicity of Beryllium Sulfate to Human Embryonic Lung Fibroblast

WANG Guang-jun,LIU Zhi-hong,AN Xiao-dan,ZHANG Xiao-yu,ZHANG Yong,LIU,He-rong,ZHU Ling-qin,MA Xiao-mei   

  1. Department of Occupational and Environmental Health, Ningxia Medical University, Yinchuan 750004, China
  • Received:2008-09-12 Revised:2009-02-03 Online:2009-05-30 Published:2009-05-30

摘要: 背景与目的: 探讨硫酸铍对体外培养的人胚肺成纤维细胞(HEL-I)的细胞毒性和遗传毒性。 材料与方法: 用不同浓度的硫酸铍(0.2、2.0、20.0、100.0、200.0 μmol/L)作用HEL-I细胞24 h,采用MTT法测定细胞存活情况,用单细胞凝胶电泳(SCGE)和微核实验测定硫酸铍对HEL-I细胞遗传损伤的情况。结果: 随着硫酸铍浓度的增加,HEL-I细胞的存活率呈下降趋势,硫酸铍浓度为100.0 μmol/L和200.0 μmol/L时,存活细胞数低于空白对照组(P<0.05);在2.0~100.0 μmol/L浓度范围内,硫酸铍均可诱发HEL-I细胞出现DNA损伤和微核率升高(P<0.05)。 结论: 硫酸铍对HEL-I细胞具有明显细胞毒性和遗传毒性。

关键词: 硫酸铍, 人胚肺成纤维细胞, 细胞毒性, 遗传毒性, DNA损伤

Abstract: BACKGROUND AND AIM: To explore the cytotoxicity and genotoxicity of beryllium sulfate to human embryonic lung fibroblast (HEL-I)in vitro .MATERIALS AND METHODS: HEL-I cells were cultured with different concentrations of beryllium sulfate for 24 h, cell survival rate was measured by MTT test, cell genetic damage was assessed by single-cell gel electrophoresis and micronucleus test . RESULTS: The survival rate of HEL-I cells decreased along with increasing concentrations of the beryllium sulfate . When the concentration of beryllium sulfate reached 100.0 μmol/L and 200.0 μmol/L, the survival rates of HEL-I cells were lower than control group. And beryllium sulfate caused DNA damage and micronucleus rate elevations in HEL-I cells at concentrations between 2.0 μmol/L and 100.0 μmol/L (P<0.05). CONCLUSION: Beryllium sulfate had obvious cytotoxicity and genotoxicity in HEL-I cells.

Key words: beryllium sulfate, human embryonic lung fibroblast, cytotoxicity, genotoxicity, DNA damage, micronucleus