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Dynamics of DNA Knots during Chain Relaxation

机译:连锁弛豫型DNA结动力学

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We perform single-molecule experiments and simulations to study the swelling of complex knots in linearly extended DNA molecules. We induce self-entanglement of DNA molecules in a microfluidic T-junction using an electrohydrodynamic instability and then stretch the molecules using divergent electric fields. After the chain is fully extended, the knot appears as a region of excess fluorescent brightness, and we shut off the field and observe the knot swelling over time. We find (1) the knot topologies created by the instability are more complex than what is expected from equilibrium simulations of knot formation, (2) the knot swells at a time scale comparable to the end-to-end relaxation of the chain, which indicates that the swelling is dictated by the chain's global dynamics, and (3) knots are long-lived when the DNA is in the coiled state. These findings demonstrate the rich physics involved in the relaxation of knotted polymers which has not been examined heretofore.
机译:我们进行单分子实验和模拟,以研究线性延伸的DNA分子中复杂结的溶胀。 我们使用电液动力学不稳定性诱导微流体T结中DNA分子的自纠缠,然后使用发散电场拉伸分子。 链条完全伸展后,结看起来作为过量荧光亮度的区域,我们关闭了场景并观察结转随着时间的推移。 我们发现(1)由不稳定性产生的结拓扑比结形成的平衡模拟所期望的更复杂,(2)结以与链条的端到端松弛相当的时间等级膨胀。 表明当DNA处于卷绕状态时,链的全局动态被链式被链式的全局动态决定,并且(3)结长期以来。 这些发现证明了尚未检查迄今为止尚未检查的打结聚合物的丰富物理。

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