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Real-time, in situ monitoring of nanoporation using electric field-induced acoustic signal

机译:使用电场感应的声波信号实时,原位监测纳米穿孔

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The use of nanoporation in reversible or irreversible electroporation, e.g. cancer ablation, is rapidly growing. This technique uses an ultra-short and intense electric pulse to increase the membrane permeability, allowing non-permeant drugs and genes access to the cytosol via nanopores in the plasma membrane. It is vital to create a real-time in situ monitoring technique to characterize this process and answer the need created by the successful electroporation procedure of cancer treatment. All suggested monitoring techniques for electroporation currently are for pre-and post-stimulation exposure with no real-time monitoring during electric field exposure. This study was aimed at developing an innovative technology for real-time in situ monitoring of electroporation based on the typical cell exposure-induced acoustic emissions. The acoustic signals are the result of the electric field, which itself can be used in realtime to characterize the process of electroporation. We varied electric field distribution by varying the electric pulse from 1μs - 100ns and varying the voltage intensity from 0 - 1.2kV to energize two electrodes in a bi-polar set-up. An ultrasound transducer was used for collecting acoustic signals around the subject under test. We determined the relative location of the acoustic signals by varying the position of the electrodes relative to the transducer and varying the electric field distribution between the electrodes to capture a variety of acoustic signals. Therefore, the electric field that is utilized in the nanoporation technique also produces a series of corresponding acoustic signals. This offers a novel imaging technique for the real-time in situ monitoring of electroporation that may directly improve treatment efficiency.
机译:在可逆或不可逆电穿孔中使用纳米穿孔,例如癌症消融,正在迅速增长。该技术使用超短而强烈的电脉冲来增加膜的通透性,从而允许非渗透性药物和基因通过质膜中的纳米孔进入细胞质。建立实时的原位监测技术以表征该过程并满足成功的癌症电穿孔程序所产生的需求是至关重要的。目前,所有建议的电穿孔监测技术均适用于刺激前后的暴露,而在电场暴露期间则没有实时监测。这项研究旨在开发一种创新技术,用于基于典型的细胞暴露引起的声发射实时实时监测电穿孔。声信号是电场的结果,电场本身可以实时用于表征电穿孔过程。我们通过改变1μs-100ns的电脉冲和0-1.2kV的电压强度来改变电场分布,从而在双极设置中为两个电极供电。超声换能器用于收集被测对象周围的声音信号。我们通过改变电极相对于换能器的位置并改变电极之间的电场分布来捕获各种声信号,从而确定声信号的相对位置。因此,纳米穿孔技术中利用的电场也产生一系列相应的声信号。这为电穿孔的实时原位监测提供了一种新颖的成像技术,可以直接提高治疗效率。

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