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首页> 外文期刊>Nucleic Acids Research >Mechanical properties of DNA-like polymers.
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Mechanical properties of DNA-like polymers.

机译:DNA样聚合物的机械性能。

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The molecular structure of the DNA double helix has been known for 60 years, but we remain surprisingly ignorant of the balance of forces that determine its mechanical properties. The DNA double helix is among the stiffest of all biopolymers, but neither theory nor experiment has provided a coherent understanding of the relative roles of attractive base stacking forces and repulsive electrostatic forces creating this stiffness. To gain insight, we have created a family of double-helical DNA-like polymers where one of the four normal bases is replaced with various cationic, anionic or neutral analogs. We apply DNA ligase-catalyzed cyclization kinetics experiments to measure the bending and twisting flexibilities of these polymers under low salt conditions. Interestingly, we show that these modifications alter DNA bending stiffness by only 20%, but have much stronger (5-fold) effects on twist flexibility. We suggest that rather than modifying DNA stiffness through a mechanism easily interpretable as electrostatic, the more dominant effect of neutral and charged base modifications is their ability to drive transitions to helical conformations different from canonical B-form DNA.Registry Number/Name of Substance 0 (Polymers). 9007-49-2 (DNA).
机译:DNA双螺旋的分子结构已经知道了60年,但是令人惊讶的是,我们仍然无法确定决定其机械性能的力的平衡。 DNA双螺旋结构是所有生物聚合物中最坚硬的,但无论是理论还是实验,都没有对吸引性碱基堆积力和产生这种刚度的排斥静电力的相对作用有一致的理解。为了获得洞察力,我们创建了一个双螺旋类DNA聚合物家族,其中四个正常碱基之一被各种阳离子,阴离子或中性类似物取代。我们应用DNA连接酶催化的环化动力学实验来测量这些聚合物在低盐条件下的弯曲和扭曲柔韧性。有趣的是,我们表明这些修饰仅使DNA的弯曲刚度改变20%,但对扭曲柔韧性的影响却大得多(5倍)。我们建议,中性和带电碱基修饰的主要作用是与其驱动DNA转变为不同于典型B型DNA的螺旋构象的能力,而不是通过易于解释为静电的机制来修饰DNA刚度。登记号/物质名称0 (聚合物)。 9007-49-2(DNA)。

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