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论核小体间相互作用及内在核小体动力学在染色质功能中的作用

On the role of inter-nucleosomal interactions and intrinsic nucleosome dynamics in chromatin function.

作者信息

Krajewski Wladyslaw A

机构信息

Institute of Developmental Biology of Russian Academy of Sciences, ul. Vavilova 26, Moscow, 119334 Russia.

出版信息

Biochem Biophys Rep. 2016 Feb 16;5:492-501. doi: 10.1016/j.bbrep.2016.02.009. eCollection 2016 Mar.

Abstract

Evidence is emerging that many diseases result from defects in gene functions, which, in turn, depend on the local chromatin environment of a gene. However, it still remains not fully clear how chromatin activity code is 'translated' to the particular 'activating' or 'repressing' chromatin structural transition. Commonly, chromatin remodeling in vitro was studied using mononucleosomes as a model. However, recent data suggest that structural reorganization of a single mononucleosome is not equal to remodeling of a nucleosome particle under multinucleosomal content - such as, interaction of nucleosomes via flexible histone termini could significantly alter the mode (and the resulting products) of nucleosome structural transitions. It is becoming evident that a nucleosome array does not constitute just a 'polymer' of individual 'canonical' nucleosomes due to multiple inter-nucleosomal interactions which affect nucleosome dynamics and structure. It could be hypothesized, that inter-nucleosomal interactions could act in cooperation with nucleosome inherent dynamics to orchestrate DNA-based processes and promote formation and stabilization of highly-dynamic, accessible structure of a nucleosome array. In the proposed paper we would like to discuss the nucleosome dynamics within the chromatin fiber mainly as it pertains to the roles of the structural changes mediated by inter-nucleosomal interactions.

摘要

越来越多的证据表明,许多疾病是由基因功能缺陷导致的,而基因功能又取决于基因的局部染色质环境。然而,染色质活性密码是如何“翻译”为特定的“激活”或“抑制”染色质结构转变,目前仍不完全清楚。通常,体外染色质重塑研究是以单核小体为模型。然而,最近的数据表明,单个单核小体的结构重组并不等同于多核小体环境下核小体颗粒的重塑——例如,核小体通过灵活的组蛋白末端相互作用,可能会显著改变核小体结构转变的模式(以及最终产物)。越来越明显的是,由于多种核小体间相互作用影响核小体动力学和结构,核小体阵列不仅仅是单个“经典”核小体的“聚合物”。可以推测,核小体间相互作用可能与核小体固有的动力学协同作用,以协调基于DNA的过程,并促进核小体阵列形成和稳定高度动态、可及的结构。在本文中,我们将主要讨论染色质纤维内的核小体动力学,这主要涉及核小体间相互作用介导的结构变化的作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4293/5600426/de9387fff68b/fx1.jpg

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