Yang Yuan, Wang Yan-Zhai, Fang Zhen, Yu Yang-Yang, Yong Yang-Chun
Biofuels Institute, School of the Environment, Jiangsu University, 301 Xuefu Road, Zhenjiang, Jiangsu, 212013, China.
Jiangsu Key Laboratory of Chemical Pollution Control and Resources Reuse, Nanjing University of Science and Technology, Nanjing, Jiangsu, 210094, China.
Anal Bioanal Chem. 2018 Feb;410(4):1231-1236. doi: 10.1007/s00216-017-0656-4. Epub 2017 Sep 30.
Toxicity assessment of water is of great important to the safety of human health and to social security because of more and more toxic compounds that are spilled into the aquatic environment. Therefore, the development of fast and reliable toxicity assessment methods is of great interest and attracts much attention. In this study, by using the electrochemical activity of Shewanella oneidensis MR-1 cells as the toxicity indicator, 3,5-dichlorophenol (DCP) as the model toxic compound, a new biosensor for water toxicity assessment was developed. Strikingly, the presence of DCP in the water significantly inhibited the maximum current output of the S. oneidensis MR-1 in a three-electrode system and also retarded the current evolution by the cells. Under the optimized conditions, the maximum current output of the biosensor was proportional to the concentration of DCP up to 30 mg/L. The half maximal inhibitory concentration of DCP determined by this biosensor is about 14.5 mg/L. Furthermore, simultaneous monitoring of the retarded time (Δt) for current generation allowed the identification of another biosensor signal in response to DCP which could be employed to verify the electrochemical result by dual confirmation. Thus, the present study has provided a reliable and promising approach for water quality assessment and risk warning of water toxicity.
由于越来越多的有毒化合物被排放到水生环境中,水的毒性评估对人类健康安全和社会安全至关重要。因此,快速可靠的毒性评估方法的开发备受关注。在本研究中,以希瓦氏菌MR-1细胞的电化学活性为毒性指标,3,5-二氯苯酚(DCP)为模型有毒化合物,开发了一种用于水毒性评估的新型生物传感器。引人注目的是,水中DCP的存在显著抑制了三电极体系中希瓦氏菌MR-1的最大电流输出,也阻碍了细胞的电流变化。在优化条件下,生物传感器的最大电流输出与DCP浓度在30 mg/L以内成正比。该生物传感器测定的DCP半数抑制浓度约为14.5 mg/L。此外,同时监测电流产生的延迟时间(Δt)可确定另一个响应DCP的生物传感器信号,用于通过双重确认来验证电化学结果。因此,本研究为水质评估和水毒性风险预警提供了一种可靠且有前景的方法。