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细胞运输促使细胞失活的低压电穿孔性能。

Cell Transport Prompts the Performance of Low-Voltage Electroporation for Cell Inactivation.

机构信息

Environmental Simulation and Pollution Control State Key Joint Laboratory, State Environmental Protection Key Laboratory of Microorganism Application and Risk Control (SMARC), School of Environment, Tsinghua University, Beijing, 100084, PR China.

School of Civil and Environmental Engineering, Georgia Institute of Technology, Atlanta, Georgia, 30332, United States.

出版信息

Sci Rep. 2018 Oct 25;8(1):15832. doi: 10.1038/s41598-018-34027-0.

Abstract

The inactivation of pathogens in liquids has broad applications, ranging from water disinfection to food pasteurization. However, common cell inactivation methods (e.g., chlorination, ultraviolet radiation and thermal treatment) have significant drawbacks such as carcinogenic byproduct formation, energy intensiveness and/or nutrient structure destruction. Here, we fabricated a new approach to address these challenges by applying a low-voltage electroporation disinfection cell (EDC) and investigate the critical mechanisms of cell transport to allow high inactivation performance. The EDC prototypes were equipped with two one-dimensional (1D) nanostructure-assisted electrodes that enabled high electric field strength (>107 V m) near the electrode surface with a low applied voltage (1 V). We have identified that during electroporation disinfection, electrophoresis, dielectrophoresis and hydraulic flow are the three major mechanisms which transport cells into the vicinity of the electrode surface to achieve superior disinfection performance. The EDC treated 70 ml of bacteria sample with an initial cell concentration of 10 CFU ml and achieved complete bacteria inactivation (survival rate <0.00001%; no live bacteria detected). Our findings will help to establish a foundation for the future development and implementation of low-voltage electroporation for cell inactivation.

摘要

在液体中使病原体失活具有广泛的应用,从水消毒到食品巴氏杀菌都有涉及。然而,常见的细胞失活方法(例如氯化、紫外线辐射和热处理)存在显著的缺点,如致癌副产物的形成、能源密集度高和/或营养结构破坏。在这里,我们通过应用低电压电穿孔消毒细胞(EDC)来制造一种新方法来解决这些挑战,并研究细胞传输的关键机制,以实现高失活性能。EDC 原型配备了两个一维(1D)纳米结构辅助电极,使电极表面附近的电场强度(>107 V/m)很高,而施加的电压(1 V)很低。我们已经确定,在电穿孔消毒过程中,电泳、介电泳和液压流是将细胞输送到电极表面附近以实现卓越消毒性能的三种主要机制。EDC 处理了初始细胞浓度为 10 CFU/ml 的 70ml 细菌样品,实现了完全的细菌失活(存活率<0.00001%;未检测到活细菌)。我们的研究结果将有助于为未来低电压电穿孔细胞失活的发展和实施奠定基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/600a/6202345/b02b398e71c8/41598_2018_34027_Fig1_HTML.jpg

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