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Crystal Structure of Cardiac-specific Histone Methyltransferase SmyD1 Reveals Unusual Active Site Architecture

机译:心脏特定的组蛋白甲基转移酶SmyD1的晶体结构揭示了异常的活性位点体系结构

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摘要

SmyD1 is a cardiac- and muscle-specific histone methyltransferase that methylates histone H3 at lysine 4 and regulates gene transcription in early heart development. The unique domain structure characterized by a “split” SET domain, a conserved MYND zinc finger, and a novel C-terminal domain (CTD) distinguishes SmyD1 from other SET domain containing methyltransferases. Here we report the crystal structure of full-length SmyD1 in complex with the cofactor analog sinefungin at 2.3 Å. The structure reveals that SmyD1 folds into a wrench-shaped structure with two thick “grips” separated by a large, deep concave opening. Importantly, our structural and functional analysis suggests that SmyD1 appears to be regulated by an autoinhibition mechanism, and that unusually spacious target lysine-access channel and the presence of the CTD domain both negatively contribute to the regulation of this cardiovascularly relevant methyltransferase. Furthermore, our structure also provides a structural basis for the interaction between SmyD1 and cardiac transcription factor skNAC, and suggests that the MYND domain may primarily serve as a protein interaction module and cooperate SmyD1 with skNAC to regulate cardiomyocyte growth and maturation. Overall, our data provide novel insights into the mechanism of SmyD1 regulation, which would be helpful in further understanding the role of this protein in heart development and cardiovascular diseases.
机译:SmyD1是一种心脏和肌肉特异性的组蛋白甲基转移酶,可在赖氨酸4处使组蛋白H3甲基化,并调节心脏早期发育中的基因转录。独特的结构域结构以“分裂的” SET结构域,保守的MYND锌指和新颖的C末端结构域(CTD)为特征,将SmyD1与其他包含甲基转移酶的SET结构域区分开。在这里,我们报道了全长SmyD1的晶体结构,与辅因子类似物西非芬净在2.3 complex处复合。该结构表明SmyD1折叠成扳手状结构,其中两个厚的“手柄”被一个大的深凹孔隔开。重要的是,我们的结构和功能分析表明,SmyD1似乎受自身抑制机制的调节,而异常宽敞的靶赖氨酸访问通道和CTD域的存在均不利于调节这种与心血管有关的甲基转移酶。此外,我们的结构还为SmyD1和心脏转录因子skNAC之间的相互作用提供了结构基础,并暗示MYND结构域可能主要充当蛋白质相互作用模块,并与SmyD1和skNAC协同调节心肌细胞的生长和成熟。总体而言,我们的数据为SmyD1调控机制提供了新颖的见解,这将有助于进一步了解该蛋白质在心脏发育和心血管疾病中的作用。

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