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首页> 外文期刊>Biochimica et biophysica acta: international journal of biochemistry and biophysics >Role of peroxide in AC electrical field exposure effects on friend murine erythroleukemia cells during dielectrophoretic manipulations.
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Role of peroxide in AC electrical field exposure effects on friend murine erythroleukemia cells during dielectrophoretic manipulations.

机译:过氧化物在交流电泳暴露过程中对交流鼠红细胞的交流电场作用中的作用。

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摘要

The effects of AC field exposure on the viability and proliferation of mammalian cells under conditions appropriate for their dielectrophoretic manipulation and sorting were investigated using DS19 murine erythroleukemia cells as a model system. The frequency range 100 Hz-10 MHz and medium conductivities of 10 mS/m, 30 mS/m and 56 mS/m were studied for fields generated by applying signals of up to 7V peak to peak (p-p) to a parallel electrode array having equal electrode widths and gaps of 100 micrometer. Between 1 kHz and 10 MHz, cell viability after up to 40 min of field exposure was found to be above 95% and cells were able to proliferate. However, cell growth lag phase was extended with decreasing field frequency and with increasing voltage, medium conductivity and exposure duration. Modified growth behavior was not passed on to the next cell passage, indicating that field exposure did not cause permanent alterations in cell proliferation characteristics. Cell membrane potentials induced by field exposure were calculated and shown to be well below values typically associated with cell damage. Furthermore, medium treated by field exposure and then added to untreated cells produced the same modifications of growth as exposing cells directly, and these modifications occurred only when the electrode polarization voltage exceeded a threshold of approximately 0.4 V p-p. These findings suggested that electrochemical products generated during field exposure were responsible for the changes in cell growth. Finally, it was found that hydrogen peroxide was produced when sugar-containing media were exposed to fields and that normal cell growth could be restored by addition of catalase to the medium, whether or not field exposure occurred in the presence of cells. These results show that AC fields typically used for dielectrophoretic manipulation and sorting of cells do not damage DS19 cells and that cell alterations arising from electrochemical effects can be completely mitigated.
机译:使用DS19鼠红白血病细胞作为模型系统,研究了交流场暴露在适合其介电泳操作和分类的条件下对哺乳动物细胞活力和增殖的影响。对于通过将最高7V峰到峰(pp)的信号施加到具有以下特性的平行电极阵列所产生的场,研究了100 Hz-10 MHz的频率范围以及10 mS / m,30 mS / m和56 mS / m的中等电导率相等的电极宽度和100微米的间隙。在1 kHz至10 MHz之间,经过长达40分钟的现场暴露后,细胞活力被发现超过95%,并且细胞能够增殖。然而,细胞生长滞后阶段随着场频的降低以及电压,介质电导率和暴露时间的延长而延长。改良的生长行为未传递至下一个细胞传代,表明野外暴露不会引起细胞增殖特性的永久改变。计算了由场暴露引起的细胞膜电位,并显示其远低于通常与细胞损伤相关的值。此外,通过场暴露处理并随后添加到未处理细胞中的培养基产生的生长修饰与直接暴露细胞相同,并且仅当电极极化电压超过约0.4 V p-p的阈值时才会发生这些修饰。这些发现表明在野外暴露期间产生的电化学产物是细胞生长变化的原因。最后,发现当含糖培养基暴露于田间时会产生过氧化氢,并且通过向培养基中添加过氧化氢酶可以恢复正常的细胞生长,无论是否在细胞存在下发生田间暴露。这些结果表明,通常用于介电泳操作和细胞分选的交流电场不会损坏DS19细胞,并且可以完全缓解电化学效应引起的细胞改变。

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