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A single molecule detection method for understanding mechanisms of electric field-mediated interstitial transport of genes

机译:用于了解电场介导的基因间质转运机制的单分子检测方法

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The interstitial space is a rate limiting physiological barrier to non-viral gene delivery. External pulsed electric fields have been proposed to increase DNA transport in the interstitium, thereby improving non-viral gene delivery. In order to characterize and improve the interstitial transport, we developed a reproducible single molecule detection method to observe the electromobility of DNA in a range of pulsed, high field strength electric fields typically used during electric field-mediated gene delivery. Using agarose gel as an interstitium phantom, we investigated the dependence of DNA electromobility, on field magnitude, pulse duration, pulse interval, and pore size in the interstitial space. We observed that the characteristic electromobility behavior, exhibited under most pulsing conditions, consisted of three distinct phases: stretching, reptation, and relaxation. Electromobility depended strongly on the field magnitude, pulse duration, and pulse interval of the applied pulse sequences, as well as the pore size of the fibrous matrix through which the DNA migrated. Our data also suggest the existence of a minimum pulse amplitude required to initiate electrophoretic transport. These results are useful for understanding the mechanisms of DNA electromobility and improving interstitial transport of genes during electric field-mediated gene delivery. (c) 2006 Elsevier B.V. All rights reserved.
机译:间隙空间是非病毒基因传递的速率限制生理屏障。已经提出了外部脉冲电场来增加间质中的DNA转运,从而改善非病毒基因的传递。为了表征和改善间隙运输,我们开发了一种可重现的单分子检测方法,以观察在电场介导的基因传递过程中通常使用的一系列脉冲高场强电场中DNA的电迁移率。使用琼脂糖凝胶作为间质模型,我们研究了DNA电迁移率对间隙大小,场长,脉冲持续时间,脉冲间隔和孔径的依赖性。我们观察到,在大多数脉冲条件下表现出的特征性电动汽车行为由三个不同的阶段组成:拉伸,复制和松弛。电迁移率很大程度上取决于施加的脉冲序列的场强,脉冲持续时间和脉冲间隔,以及DNA迁移所穿过的纤维基质的孔径。我们的数据还表明存在启动电泳转运所需的最小脉冲振幅。这些结果可用于了解DNA电迁移的机制,并改善电场介导的基因传递过程中基因的间隙运输。 (c)2006 Elsevier B.V.保留所有权利。

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