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A benchmark data set for the mechanical properties of double-stranded DNA and RNA under torsional constraint

机译:扭转约束下双链DNA和RNA力学性能的基准数据集

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摘要

Nucleic acids are central to the storage and transmission of genetic information and play essential roles in many cellular processes. Quantitative understanding and modeling of their functions and properties requires quantitative experimental characterization. We use magnetic tweezers (MT) to apply precisely calibrated stretching forces and linking number changes to DNA and RNA molecules tethered between a surface and superparamagnetic beads. Magnetic torque tweezers (MTT) allow to control the linking number of double-stranded DNA or RNA tethers, while directly measuring molecular torque by monitoring changes in the equilibrium rotation angle upon over- or underwinding of the helical molecules. Here, we provide a comprehensive data set of double-stranded DNA and RNA under controlled stretching as a function of the linking number. We present data for extension and torque as a function of linking number in equilibrium. We report data for the critical torque of buckling and of the torsional stiffness of DNA and RNA as a function of applied force. Finally, we provide dynamic data for the hopping behavior at the DNA buckling point.
机译:核酸对于遗传信息的存储和传递至关重要,并且在许多细胞过程中起着至关重要的作用。对它们的功能和特性的定量理解和建模需要定量的实验表征。我们使用磁性镊子(MT)施加精确校准的拉伸力,并将数量变化链接到拴在表面和超顺磁珠之间的DNA和RNA分子。磁性扭矩镊子(MTT)可以控制双链DNA或RNA束缚链的连接数,同时通过监视螺旋分子过度或不足缠绕时平衡旋转角的变化来直接测量分子扭矩。在这里,我们根据连接数提供了在受控拉伸下双链DNA和RNA的综合数据集。我们提出了伸长和扭矩数据,作为平衡状态下连接数的函数。我们报告屈曲的临界扭矩以及DNA和RNA的扭转刚度作为施加力的函数的数据。最后,我们为DNA屈曲点的跳跃行为提供了动态数据。

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