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首页> 外文期刊>The Journal of Chemical Physics >Electrophoretic mobility of semi-flexible double-stranded DNA in defect-controlled polymer networks: Mechanism investigation and role of structural parameters
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Electrophoretic mobility of semi-flexible double-stranded DNA in defect-controlled polymer networks: Mechanism investigation and role of structural parameters

机译:缺陷控制的聚合物网络中半柔性双链DNA的电泳迁移率:机理研究和结构参数的作用

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摘要

Our previous studies have reported an empirical model, which explains the electrophoretic mobility (mu) of double-stranded DNA (dsDNA) as a combination of a basic migration term (Rouse-like or reptation) and entropy loss term in polymer gels with ideal network structure. However, this case is of exception, considering a large amount of heterogeneity in the conventional polymer gels. In this study, we systematically tune the heterogeneity in the polymer gels and study the migration of dsDNA in these gels. Our experimental data well agree with the model found for ideal networks. The basic migration mechanism (Rouse-like or reptation) persists perfectly in the conventional heterogeneous polymer gel system, while the entropy loss term continuously changes with increase in the heterogeneity. Furthermore, we found that in the limit where dsDNA is shorter than dsDNA persistence length, the entropy loss term may be related to the collisional motions between DNA fragments and the cross-links. (C) 2015 AIP Publishing LLC.
机译:我们以前的研究报告了一种经验模型,该模型解释了具有理想网络的聚合物凝胶中双迁移DNA(dsDNA)的电泳迁移率(μ),该迁移率是基本迁移项(类似Rouse或reptation)和熵损失项的组合结构体。但是,考虑到常规聚合物凝胶中的大量异质性,这种情况是例外。在这项研究中,我们系统地调整了聚合物凝胶中的异质性,并研究了dsDNA在这些凝胶中的迁移。我们的实验数据与为理想网络找到的模型完全吻合。基本的迁移机理(类Rouse或reptation)在常规的非均相聚合物凝胶体系中完全存在,而熵损失项随非均质性的增加而连续变化。此外,我们发现在dsDNA比dsDNA持久长度短的极限中,熵损失项可能与DNA片段和交联之间的碰撞运动有关。 (C)2015 AIP Publishing LLC。

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