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首页> 外文期刊>Nucleic Acids Research >The double PHD finger domain of MOZ/MYST3 induces alpha-helical structure of the histone H3 tail to facilitate acetylation and methylation sampling and modification
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The double PHD finger domain of MOZ/MYST3 induces alpha-helical structure of the histone H3 tail to facilitate acetylation and methylation sampling and modification

机译:MOZ / MYST3的双PHD指结构域诱导组蛋白H3尾部的α-螺旋结构,以促进乙酰化和甲基化采样及修饰

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摘要

Histone tail modifications control many nuclear processes by dictating the dynamic exchange of regulatory proteins on chromatin. Here we report novel insights into histone H3 tail structure in complex with the double PHD finger (DPF) of the lysine acetyltransferase MOZ/MYST3/KAT6A. In addition to sampling H3 and H4 modification status, we show that the DPF cooperates with the MYST domain to promote H3K9 and H3K14 acetylation, although not if H3K4 is trimethylated. Four crystal structures of an extended DPF alone and in complex with unmodified or acetylated forms of the H3 tail reveal the molecular basis of crosstalk between H3K4me3 and H3K14ac. We show for the first time that MOZ DPF induces alpha-helical conformation of H3K4-T11, revealing a unique mode of H3 recognition. The helical structure facilitates sampling of H3K4 methylation status, and proffers H3K9 and other residues for modification. Additionally, we show that a conserved double glycine hinge flanking the H3 tail helix is required for a conformational change enabling docking of H3K14ac with the DPF. In summary, our data provide the first observations of extensive helical structure in a histone tail, revealing the inherent ability of the H3 tail to adopt alternate conformations in complex with chromatin regulators.
机译:组蛋白尾部修饰通过指示染色质上调节蛋白的动态交换来控制许多核过程。在这里我们报告复杂的组氨酸H3尾巴结构与赖氨酸乙酰基转移酶MOZ / MYST3 / KAT6A的双PHD手指(DPF)的新颖见解。除了采样H3和H4修饰状态外,我们还显示DPF与MYST域协作以促进H3K9和H3K14乙酰化,但是如果H3K4被三甲基化则不会。单独的扩展DPF的四个晶体结构以及与未修饰或乙酰化形式的H3尾部复合的四个晶体结构揭示了H3K4me3和H3K14ac之间串扰的分子基础。我们第一次显示MOZ DPF诱导H3K4-T11的α-螺旋构象,揭示了H3识别的独特模式。螺旋结构有助于采样H3K4甲基化状态,并提供H3K9和其他残基进行修饰。此外,我们表明,构象变化需要使H3K14ac与DPF对接,在H3尾螺旋两侧的保守双甘氨酸铰链是必需的。总之,我们的数据首次观察到了组蛋白尾巴中广泛的螺旋结构,揭示了H3尾巴在与染色质调节剂复合时采用固有构象的固有能力。

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