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Free Energy Landscape and Dynamics of Supercoiled DNA by High-Speed Atomic Force Microscopy

机译:高速原子力显微镜自由能景观和超级DNA的动态

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DNA supercoiling fundamentally constrains and regulates the storage and use of genetic information. While the equilibrium properties of supercoiled DNA are relatively well understood, the dynamics of supercoils are much harder to probe. Here we use atomic force microscopy (AFM) imaging to demonstrate that positively supercoiled DNA plasmids, in contrast to their negatively supercoiled counterparts, preserve their plectonemic geometry upon adsorption under conditions that allow for dynamics and equilibration on the surface. Our results are in quantitative agreement with a physical polymer model for supercoiled plasmids that takes into account the known mechanical properties and torque-induced melting of DNA. We directly probe supercoil dynamics using high-speed AFM imaging with subsecond time and similar to nanometer spatial resolution. From our recordings we quantify self-diffusion, branch point flexibility, and slithering dynamics and demonstrate that reconfiguration of molecular extensions is predominantly governed by the bending flexibility of plectoneme arms. We expect that our methodology can be an asset to probe protein-DNA interactions and topochemical reactions on physiological relevant DNA length and supercoiling scales by high-resolution AFM imaging.
机译:DNA SuperCoiling从根本上限制和调节遗传信息的存储和使用。虽然超硅酸DNA的平衡性能相对良好地理解,但超级油的动态更难探讨。在这里,我们使用原子力显微镜(AFM)成像来证明与它们的负面超底对应物相比,阳性过底的DNA质粒,在吸附在允许动力学和表面上平衡的条件下保留其本谱几何形状。我们的结果与超硅质粒的物理聚合物模型进行了定量协议,该模型考虑了已知的机械性能和扭矩诱导的DNA熔化。我们使用亚仲段时间和类似纳米空间分辨率使用高速AFM成像直接探测超荷式动态。从我们的录音开始,我们量化自扩散,分支点灵活性和滑动动力学,并证明了分子延伸的重新配置主要受到Proectoneme臂的弯曲柔韧性的管辖。我们预期,我们的方法可以是探针蛋白-DNA相互作用和通过高分辨率AFM成像对生理相关DNA长度和超级铜尺度的类别化学反应的资产。

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