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Fluid mechanics of DNA double-strand filter elution.

机译:DNA双链过滤器洗脱的流体力学。

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摘要

Measurement of infrequent DNA double-strand breaks (DSB) in mammalian cells is essential for the understanding of cell damage by ionizing radiation and many DNA-reactive drugs. One of the most important assays for measuring DSB in cellular DNA is filter elution. This study is an attempt to determine whether standard concepts of fluid mechanics can yield a self-consistent model of this process. Major assumptions of the analysis are reptation through a channel formed by surrounding strands, with only strand ends captured by filter pores. Both viscosity and entanglement with surrounding strands are considered to determine the resistance to this motion. One important result is that the average elution time of a strand depends not only on its length, but also on the size distribution of the surrounding strands. This model is consistent with experimental observations, such as the dependence of elution kinetics upon radiation dose, but independence from the size of the DNA sample up to a critical filter loading, and possible overlap of elution times for strands of different length. It indicates how the dependence of elution time on the flow rate could reveal the relative importance of viscous and entanglement resistance, and also predicts the consequences of using different filters.
机译:哺乳动物细胞中偶发性DNA双链断裂(DSB)的测量对于了解电离辐射和许多对DNA具有反应性的药物对细胞造成的损害至关重要。过滤细胞洗脱是测量细胞DNA中DSB的最重要方法之一。这项研究试图确定流体力学的标准概念是否可以产生此过程的自洽模型。该分析的主要假设是通过由周围股线形成的通道进行排水,只有股线末端被过滤器孔捕获。粘度和与周围股线的缠结都被认为是确定对该运动的抵抗力。一个重要的结果是,一条链的平均洗脱时间不仅取决于其长度,还取决于周围链的大小分布。该模型与实验观察结果一致,例如洗脱动力学对辐射剂量的依赖性,但不依赖于DNA样品的大小,直至临界过滤器负载,以及不同长度链的洗脱时间可能重叠。它表明了洗脱时间对流速的依赖性如何揭示粘性和抗缠结性的相对重要性,并且还预测了使用不同过滤器的后果。

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