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Entropic Competition between Supercoiled and Torsionally Relaxed Chromatin Fibers Drives Loop Extrusion through Pseudo-Topologically Bound Cohesin

机译:超级型和扭转染色质纤维之间的熵竞争通过伪拓扑结合的休蛋白来驱动回路挤出

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摘要

We propose a model for cohesin-mediated loop extrusion, where the loop extrusion is driven entropically by the energy difference between supercoiled and torsionally relaxed chromatin fibers. Different levels of negative supercoiling are controlled by varying imposed friction between the cohesin ring and the chromatin fiber. The speed of generation of negative supercoiling by RNA polymerase associated with TOP1 is kept constant and corresponds to 10 rotations per second. The model was tested by coarse-grained molecular simulations for a wide range of frictions between 2 to 200 folds of that of generic fiber and the surrounding medium. The higher friction allowed for the accumulation of higher levels of supercoiling, while the resulting extrusion rate also increased. The obtained extrusion rates for the given range of investigated frictions were between 1 and 10 kbps, but also a saturation of the rate at high frictions was observed. The calculated contact maps indicate a qualitative improvement obtained at lower levels of supercoiling. The fits of mathematical equations qualitatively reproduce the loop sizes and levels of supercoiling obtained from simulations and support the proposed mechanism of entropically driven extrusion. The cohesin ring is bound on the fibers pseudo-topologically, and the model suggests that the topological binding is not necessary.
机译:我们提出了一种用于休尼蛋白介导的环形挤出的模型,其中通过超硅和扭转的染色质纤维之间的能量差来促进环挤出。通过不同的阴性摩擦在Cohonein环和染色质纤维之间的施加摩擦来控制不同水平的阴性超级含量。通过与TOP1相关的RNA聚合酶产生负超级卷的速度保持恒定,并且对应于每秒10个转动。该模型通过粗粒分子模拟测试,在普通纤维和周围介质的2至200倍之间的各种摩擦范围内进行测试。较高的摩擦允许积累的超级煎锅,而产生的挤出速率也增加。所得对给定范围的研究摩擦的挤出率在1至10kbps之间,但观察到高摩擦处的速率的饱和度。计算出的联系地图表明在较低水平的超录体中获得的定性改善。数学方程的配合定性地再现了从仿真获得的超级录的环尺寸和水平,并支持所提出的熵驱动挤出机构。 Cohesin环在纤维上伪拓扑上束缚,该模型表明拓扑结合不是必需的。

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