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Histone chaperone exploits intrinsic disorder to switch acetylation specificity

机译:组蛋白伴侣爆炸内在病症切换乙酰化特异性

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Histones, the principal protein components of chromatin, contain long disordered sequences, which are extensively post-translationally modified. Although histone chaperones are known to control both the activity and specificity of histone-modifying enzymes, the mechanisms promoting modification of highly disordered substrates, such as lysine-acetylation within the N-terminal tail of histone H3, are not understood. Here, to understand how histone chaperones Asf1 and Vps75 together promote H3 K9-acetylation, we establish the solution structural model of the acetyltransferase Rtt109 in complex with Asf1 and Vps75 and the histone dimer H3:H4. We show that Vps75 promotes K9-acetylation by engaging the H3 N-terminal tail in fuzzy electrostatic interactions with its disordered C-terminal domain, thereby confining the H3 tail to a wide central cavity faced by the Rtt109 active site. These fuzzy interactions between disordered domains achieve localization of lysine residues in the H3 tail to the catalytic site with minimal loss of entropy, and may represent a common mechanism of enzymatic reactions involving highly disordered substrates.
机译:组蛋白是染色质的主要蛋白质成分含有长无序的序列,其广泛翻译翻译后改性。虽然已知组蛋白伴侣控制组蛋白修饰酶的活性和特异性,但不理解促进高度无序底物的改变的机制,例如组蛋白H3的N-末端尾部的赖氨酸 - 乙酰化。这里,了解组蛋白伴侣ASF1和VPS75如何促进H3 K9-乙酰化,我们建立乙酰转移酶RTT109的溶液结构模型与ASF1和VPS75和组蛋白二聚体H3:H4。我们表明VPS75通过将H3 n末端尾部与其无序的C末端结构域与模糊静电相互作用接合而促进K9-乙酰化,从而将H3尾部限制到RTT109活性位点面对的宽中心腔中。这些无序结构域之间的模糊相互作用使H3尾部的赖氨酸残留物的定位在熵损失,并且可以代表涉及高度无序的底物的酶促反应的常见机制。

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