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Spatial confinement induces hairpins in nicked circular DNA

机译:空间限制诱导斑纹圆形DNA中的发夹

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In living cells, DNA is highly confined in space with the help of condensing agents, DNA binding proteins and high levels of supercoiling. Due to challenges associated with experimentally studying DNA under confinement, little is known about the impact of spatial confinement on the local structure of the DNA. Here, we have used well characterized slits of different sizes to collect high resolution atomic force microscopy images of confined circular DNA with the aim of assessing the impact of the spatial confinement on global and local conformational properties of DNA. Our findings, supported by numerical simulations, indicate that confinement imposes a large mechanical stress on the DNA as evidenced by a pronounced anisotropy and tangent-tangent correlation function with respect to non-constrained DNA. For the strongest confinement we observed nanometer sized hairpins and interwound structures associated with the nicked sites in the DNA sequence. Based on these findings, we propose that spatial DNA confinement in vivo can promote the formation of localized defects at mechanically weak sites that could be co-opted for biological regulatory functions.
机译:在活细胞中,DNA在缩合剂,DNA结合蛋白和高水平的超铜的帮助下高度限制在空间中。由于与监禁下的实验研究DNA相关的挑战,关于空间限制对DNA局部结构的影响很少。这里,我们使用了很好的不同尺寸的狭缝,以收集狭窄的圆形DNA的高分辨率原子力显微镜图像,目的是评估空间限制对DNA全局和局部构象性质的影响。通过数值模拟支持的研究结果表明,限制对DNA的大量机械应力施加了大量的直观和切线相关函数关于非受限制的DNA的切相相关函数。对于最强大的限制,我们观察了与DNA序列中的切屑位点相关的纳米大小的发夹和与切口位点相关的内部结构。基于这些发现,我们建议在体内空间DNA坐月子可以促进局部缺陷的机械强度薄弱点可能是形成增选为生物调节功能。

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