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Rouse model with transient intramolecular contacts on a timescale of seconds recapitulates folding and fluctuation of yeast chromosomes

机译:在几秒钟的时间尺度上具有瞬时分子内接触的Rouse模型概括了酵母染色体的折叠和波动

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摘要

DNA folding and dynamics along with major nuclear functions are determined by chromosome structural properties, which remain, thus far, elusive in vivo. Here, we combine polymer modeling and single particle tracking experiments to determine the physico-chemical parameters of chromatin in vitro and in living yeast. We find that the motion of reconstituted chromatin fibers can be recapitulated by the Rouse model using mechanical parameters of nucleosome arrays deduced from structural simulations. Conversely, we report that the Rouse model shows some inconsistencies to analyze the motion and structural properties inferred from yeast chromosomes determined with chromosome conformation capture techniques (specifically, Hi-C). We hence introduce the Rouse model with Transient Internal Contacts (RouseTIC), in which random association and dissociation occurs along the chromosome contour. The parametrization of this model by fitting motion and Hi-C data allows us to measure the kinetic parameters of the contact formation reaction. Chromosome contacts appear to be transient; associated to a lifetime of seconds and characterized by an attractive energy of –0.3 to –0.5 kBT. We suggest attributing this energy to the occurrence of histone tail-DNA contacts and notice that its amplitude sets chromosomes in ‘theta’ conditions, in which they are poised for compartmentalization and phase separation.
机译:DNA折叠和动力学以及主要的核功能由染色体结构特性决定,迄今为止,这些结构特性在体内仍然难以捉摸。在这里,我们结合聚合物建模和单颗粒跟踪实验来确定体外和活酵母中染色质的物理化学参数。我们发现,通过使用结构模拟推导的核小体阵列的机械参数,通过Rouse模型可以概括重构的染色质纤维的运动。相反,我们报道了Rouse模型显示出一些不一致之处,这些不一致之处无法用来分析由染色体构象捕获技术(特别是Hi-C)确定的酵母染色体的运动和结构特性。因此,我们介绍了带有瞬时内部接触(RouseTIC)的Rouse模型,其中随机关联和解离沿着染色体轮廓发生。通过拟合运动和Hi-C数据对该模型进行参数化,使我们能够测量接触形成反应的动力学参数。染色体接触似乎是暂时的;与几秒钟的寿命相关,并具有–0.3至–0.5 kBT的吸引力。我们建议将这种能量归因于组蛋白尾巴DNA接触的发生,并注意其振幅将染色体设置在“θ”条件下,在该条件下它们准备进行分隔和相分离。

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