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Evidence supporting a critical contribution of intrinsically disordered regions to the biochemical behavior of full-length human HP1γ

机译:支持内在无序区域对全长人HP1γ的生化行为的关键贡献的证据

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摘要

HP1γ, a non-histone chromatin protein, has elicited significant attention because of its role in gene silencing, elongation, splicing, DNA repair, cell growth, differentiation, and many other cancer-associated processes, including therapy resistance. These characteristics make it an ideal target for developing small drugs for both mechanistic experimentation and potential therapies. While high-resolution structures of the two globular regions of HP1γ, the chromo- and chromoshadow domains, have been solved, little is currently known about the conformational behavior of the full-length protein. Consequently, in the current study, we use threading, homology-based molecular modeling, molecular mechanics calculations, and molecular dynamics simulations to develop models that allow us to infer properties of full-length HP1γ at an atomic resolution level. HP1γ appears as an elongated molecule in which three Intrinsically Disordered Regions (IDRs, 1, 2, and 3) endow this protein with dynamic flexibility, intermolecular recognition properties, and the ability to integrate signals from various intracellular pathways. Our modeling also suggests that the dynamic flexibility imparted to HP1γ by the three IDRs is important for linking nucleosomes with PXVXL motif-containing proteins, in a chromatin environment. The importance of the IDRs in intermolecular recognition is illustrated by the building and study of both IDR2 HP1γ−importin-α and IDR1 and IDR2 HP1γ−DNA complexes. The ability of the three IDRs for integrating cell signals is demonstrated by combined linear motif analyses and molecular dynamics simulations showing that posttranslational modifications can generate a histone mimetic sequence within the IDR2 of HP1γ, which when bound by the chromodomain can lead to an autoinhibited state. Combined, these data underscore the importance of IDRs 1, 2, and 3 in defining the structural and dynamic properties of HP1γ, discoveries that have both mechanistic and potentially biomedical relevance.Electronic supplementary materialThe online version of this article (doi:10.1007/s00894-015-2874-z) contains supplementary material, which is available to authorized users.
机译:HP1γ是一种非组蛋白染色质蛋白,由于其在基因沉默,延伸,剪接,DNA修复,细胞生长,分化以及许多其他与癌症相关的过程(包括治疗耐药性)中的作用而备受关注。这些特性使其成为开发用于机械实验和潜在疗法的小型药物的理想目标。尽管已经解决了HP1γ两个球状区域(染色体和染色体阴影域)的高分辨率结构,但目前对全长蛋白质的构象行为了解甚少。因此,在当前的研究中,我们使用线程,基于同源性的分子建模,分子力学计算和分子动力学模拟来开发模型,以使我们能够在原子分辨率水平上推断全长HP1γ的性质。 HP1γ表现为细长分子,其中三个固有紊乱区(IDR,1、2和3)赋予该蛋白动态灵活性,分子间识别特性以及整合来自各种细胞内途径的信号的能力。我们的模型还表明,在染色质环境中,三个IDR赋予HP1γ的动态柔韧性对于将核小体与包含PXVXL基序的蛋白质连接起来很重要。 IDR在分子间识别中的重要性通过IDR2HP1γ-importin-α和IDR1和IDR2HP1γ-DNA复合物的构建和研究得以说明。结合的线性基序分析和分子动力学模拟证明了三个IDR整合细胞信号的能力,表明翻译后修饰可在HP1γ的IDR2内产生组蛋白模拟序列,当其被染色体结构域结合时可导致自抑制状态。综合起来,这些数据强调了IDR 1、2和3在定义HP1γ的结构和动力学性质方面的重要性,这些发现具有机械和潜在的生物医学相关性。电子补充材料本文的在线版本(doi:10.1007 / s00894- 015-2874-z)包含补充材料,授权用户可以使用。

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