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Quantitative analysis of HP1alpha binding to nucleosomal arrays.

机译:定量分析HP1alpha与核小体阵列的结合。

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Elucidating how the metazoan genome is organised into distinct functional domains is fundamental to understanding all aspects of normal cellular growth and development. The "histone code" hypothesis predicts that post-translational modifications of specific histone residues regulate genomic function by selectively recruiting nuclear factors that modify chromatin structure. A paradigm supporting this hypothesis is the preferential binding of the silencing protein heterochromatin protein 1 (HP1) to histone H3 trimethylated at K9. However, a caveat to several in vitro studies is that they employed histone N-terminal tail peptides to determine dissociation constants, thus ignoring any potential role of DNA and/or the underlying chromatin structure in the recruitment of HP1. Using a well-defined in vitro chromatin assembly system (employing a 12-208 DNA template), we describe here, the use of a fluorescence spectroscopic method that enabled us to measure and quantify the relative binding affinities of HP1alpha to unmodified and variant nucleosomal arrays. Using this approach, we previously demonstrated that mouse HP1alpha (i) binds with high affinity to naked DNA, (ii) has an intrinsic affinity for highly folded chromatin, (iii) has a 2-fold higher affinity for nucleosomal arrays when H2A is replaced with H2A.Z, and (iv) binds to DNA or chromatin in a non-cooperative manner.
机译:阐明后生动物基因组如何组织成不同的功能域是理解正常细胞生长和发育各个方面的基础。 “组蛋白密码”假说预测特定组蛋白残基的翻译后修饰通过选择性地募集修饰染色质结构的核因子来调节基因组功能。支持该假设的范例是沉默蛋白异染色质蛋白1(HP1)与在K9三甲基化的组蛋白H3的优先结合。但是,对一些体外研究的一个警告是,他们使用组蛋白N末端尾部肽来确定解离常数,因此忽略了DNA和/或潜在的染色质结构在HP1募集中的任何潜在作用。我们使用定义明确的体外染色质组装系统(采用12-208 DNA模板)进行描述,其中使用了荧光光谱方法,该方法使我们能够测量和量化HP1alpha与未修饰的和变异的核小体阵列的相对结合亲和力。使用这种方法,我们以前证明了小鼠HP1alpha(i)与裸露的DNA具有高亲和力,(ii)对高度折叠的染色质具有内在亲和力,(iii)当替换H2A时对核小体阵列具有2倍的高亲和力(iv)以非合作方式与DNA或染色质结合。

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