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Posttranslational modification of CENP-A influences the conformation of centromeric chromatin

机译:CENP-A的翻译后修饰影响着丝粒染色质的构象

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摘要

Centromeres are chromosomal loci required for accurate segregation of sister chromatids during mitosis. The location of the centromere on the chromosome is not dependent on DNA sequence, but rather it is epigenetically specified by the histone H3 variant centromere protein A (CENP-A). The N-terminal tail of CENP-A is highly divergent from other H3 variants. Canonical histone N termini are hotspots of conserved posttranslational modification; however, no broadly conserved modifications of the vertebrate CENP-A tail have been previously observed. Here, we report three posttranslational modifications on human CENP-A N termini using high-resolution MS: trimethylation of Gly1 and phosphorylation of Ser16 and Ser18. Our results demonstrate that CENP-A is subjected to constitutive initiating methionine removal, similar to other H3 variants. The nascent N-terminal residue Gly1 becomes trimethylated on the α-amino group. We demonstrate that the N-terminal RCC1 methyltransferase is capable of modifying the CENP-A N terminus. Methylation occurs in the prenucleosomal form and marks the majority of CENP-A nucleosomes. Serine 16 and 18 become phosphorylated in prenucleosomal CENP-A and are phosphorylated on asynchronous and mitotic nucleosomal CENP-A and are important for chromosome segregation during mitosis. The double phosphorylation motif forms a salt-bridged secondary structure and causes CENP-A N-terminal tails to form intramolecular associations. Analytical ultracentrifugation of phospho-mimetic CENP-A nucleosome arrays demonstrates that phosphorylation results in greater intranucleosome associations and counteracts the hyperoligomerized state exhibited by unmodified CENP-A nucleosome arrays. Our studies have revealed that the major modifications on the N-terminal tail of CENP-A alter the physical properties of the chromatin fiber at the centromere.
机译:着丝粒是在有丝分裂过程中准确分离姐妹染色单体所需的染色体位点。着丝粒在染色体上的位置不取决于DNA序列,而是由组蛋白H3变体着丝粒蛋白A(CENP-A)在表观遗传上指定。 CENP-A的N末端尾巴与其他H3变体高度不同。规范的组蛋白N末端是保守的翻译后修饰的热点。然而,以前没有观察到脊椎动物CENP-A尾巴的广泛保守的修饰。在这里,我们报告使用高分辨率质谱对人类CENP-A N末端的三个翻译后修饰:Gly1的三甲基化以及Ser16和Ser18的磷酸化。我们的结果表明,CENP-A与其他H3变体相似,经历了组成型起始蛋氨酸的去除。新生的N末端残基Gly1在α-氨基上被三甲基化。我们证明了N末端RCC1甲基转移酶能够修饰CENP-A N末端。甲基化以核小体前形式发生,并标志着大多数CENP-A核小体。丝氨酸16和18在核小体前CENP-A中被磷酸化,并且在异步和有丝分裂核小体CENP-A上被磷酸化,并且对于有丝分裂期间的染色体分离很重要。双重磷酸化基序形成盐桥联的二级结构,并引起CENP-A N-末端尾巴形成分子内缔合。磷酸模拟CENP-A核小体阵列的超离心分析表明,磷酸化可导致更大的核内体缔合,并抵消未修饰的CENP-A核小体阵列所表现出的超低聚状态。我们的研究表明,CENP-A N末端尾部的主要修饰会改变着丝粒处染色质纤维的物理特性。

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