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Dynamics of Forced Nucleosome Unraveling and Role of Nonuniform Histone-DNA Interactions

机译:强迫核小体解体的动力学和非均匀组蛋白-DNA相互作用的作用。

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摘要

A coarse-grained model of the nucleosome is introduced to investigate the dynamics of force-induced unwrapping of DNA from histone octamers. In this model, the DNA is treated as a charged, discrete worm-like chain, and the octamer is treated as a rigid cylinder carrying a positively charged superhelical groove that accommodates 1.7 turns of DNA. The groove charges are parameterized to reproduce the nonuniform histone/DNA interaction free energy profile and the loading rate-dependent unwrapping forces, both obtained from single-molecule experiments. Brownian dynamics simulations of the model under constant loading conditions reveal that nucleosome unraveling occurs in three distinct stages. At small extensions, the flanking DNA exhibits rapid unwrapping-rewrapping (breathing) dynamics and the octamer flips ∼180° and moves toward the pulling axis. At intermediate extensions, the outer turn of DNA unwraps gradually and the octamer swivels about the taut linkers and flips a further ∼90° to orient its superhelical axis almost parallel to the pulling axis. At large extensions, a portion of the inner turn unwraps abruptly with a notable rip in the force-extension plot and a >90° flip of the octamer. The remaining inner turn unwraps reversibly to leave a small portion of DNA attached to the octamer despite extended pulling. Our simulations further reveal that the nonuniform histone/DNA interactions in canonical nucleosomes serve to: stabilize the inner turn against unraveling while enhancing the breathing dynamics of the nucleosome and prevent dissociation of the octamer from the DNA while facilitating its mobility along the DNA. Thus, the modulation of the histone/DNA interactions could constitute one possible mechanism for regulating the accessibility of the nucleosome-wound DNA sequences.
机译:引入了核小体的粗粒模型来研究从组蛋白八聚体中力诱导的DNA解包装的动力学。在此模型中,将DNA视为带电的,离散的蠕虫状链,并将八聚体视为带有带正电的超螺旋凹槽的刚性圆柱体,该凹槽可容纳1.7转DNA。对槽电荷进行参数化,以重现均从单分子实验获得的不均匀的组蛋白/ DNA相互作用自由能图和取决于加载速率的解包力。在恒定载荷条件下对该模型的布朗动力学仿真表明,核小体解体发生在三个不同的阶段。在较小的延伸处,侧翼DNA表现出快速的解缠-缠缠(呼吸)动力学,八聚体翻转约180°并朝着牵制轴移动。在中间延伸时,DNA的外圈逐渐解开,八聚体围绕绷紧的接头旋转,再翻转约90°,使其超螺旋轴几乎平行于拉动轴。在较大的延伸处,内弯的一部分突然突然解开,在力-延伸图中明显裂开,八度体翻转> 90°。尽管延长了拉力,但其余的内匝可逆地解缠,从而使一小部分DNA附着在八聚体上。我们的模拟进一步揭示,规范核小体中不均匀的组蛋白/ DNA相互作用可起到以下作用:稳定内部转弯以防止解散,同时增强核小体的呼吸动力学,并防止八聚体与DNA分离,同时促进八聚体沿DNA的移动性。因此,组蛋白/ DNA相互作用的调节可构成调节核小体-伤口DNA序列可及性的一种可能机制。

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