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六维自由能表面上的四聚核小体的稳定性和折叠途径。

Stability and folding pathways of tetra-nucleosome from six-dimensional free energy surface.

机构信息

Department of Chemistry, Massachusetts Institute of Technology, 77 Massachusetts Avenue, Cambridge, MA 02139, USA.

出版信息

Nat Commun. 2021 Feb 17;12(1):1091. doi: 10.1038/s41467-021-21377-z.

Abstract

The three-dimensional organization of chromatin is expected to play critical roles in regulating genome functions. High-resolution characterization of its structure and dynamics could improve our understanding of gene regulation mechanisms but has remained challenging. Using a near-atomistic model that preserves the chemical specificity of protein-DNA interactions at residue and base-pair resolution, we studied the stability and folding pathways of a tetra-nucleosome. Dynamical simulations performed with an advanced sampling technique uncovered multiple pathways that connect open chromatin configurations with the zigzag crystal structure. Intermediate states along the simulated folding pathways resemble chromatin configurations reported from in situ experiments. We further determined a six-dimensional free energy surface as a function of the inter-nucleosome distances via a deep learning approach. The zigzag structure can indeed be seen as the global minimum of the surface. However, it is not favored by a significant amount relative to the partially unfolded, in situ configurations. Chemical perturbations such as histone H4 tail acetylation and thermal fluctuations can further tilt the energetic balance to stabilize intermediate states. Our study provides insight into the connection between various reported chromatin configurations and has implications on the in situ relevance of the 30 nm fiber.

摘要

染色质的三维组织有望在调节基因组功能方面发挥关键作用。对其结构和动力学的高分辨率特征描述可以提高我们对基因调控机制的理解,但一直具有挑战性。我们使用一种近原子模型,该模型保留了在残基和碱基对分辨率下蛋白质-DNA 相互作用的化学特异性,研究了四联体核小体的稳定性和折叠途径。使用先进的采样技术进行的动力学模拟揭示了将开放染色质构象与锯齿形晶体结构连接起来的多种途径。模拟折叠途径中的中间状态类似于原位实验中报道的染色质构象。我们还通过深度学习方法确定了作为核小体间距离函数的六维自由能表面。锯齿形结构确实可以看作是表面的全局最小值。然而,与部分展开的原位构象相比,它的优势并不明显。化学修饰(如组蛋白 H4 尾巴乙酰化)和热波动可以进一步倾斜能量平衡,以稳定中间状态。我们的研究提供了对各种报道的染色质构象之间的联系的深入了解,并对 30nm 纤维的原位相关性有影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/60fe/7889939/2cc5506bf5d0/41467_2021_21377_Fig1_HTML.jpg

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