首页> 美国卫生研究院文献>Proceedings of the National Academy of Sciences of the United States of America >Crystal structure of tubulin tyrosine ligase-like 3 reveals essential architectural elements unique to tubulin monoglycylases
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Crystal structure of tubulin tyrosine ligase-like 3 reveals essential architectural elements unique to tubulin monoglycylases

机译:微管蛋白酪氨酸连接酶样3的晶体结构揭示了微管蛋白单糖基化酶独特的基本建筑元素

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摘要

Glycylation and glutamylation, the posttranslational addition of glycines and glutamates to genetically encoded glutamates in the intrinsically disordered tubulin C-terminal tails, are crucial for the biogenesis and stability of cilia and flagella and play important roles in metazoan development. Members of the diverse family of tubulin tyrosine ligase-like (TTLL) enzymes catalyze these modifications, which are part of an evolutionarily conserved and complex tubulin code that regulates microtubule interactions with cellular effectors. The site specificity of TTLL enzymes and their biochemical interplay remain largely unknown. Here, we report an in vitro characterization of a tubulin glycylase. We show that TTLL3 glycylates the β-tubulin tail at four sites in a hierarchical order and that TTLL3 and the glutamylase TTLL7 compete for overlapping sites on the tubulin tail, providing a molecular basis for the anticorrelation between glutamylation and glycylation observed in axonemes. This anticorrelation demonstrates how a combinatorial tubulin code written in two different posttranslational modifications can arise through the activities of related but distinct TTLL enzymes. To elucidate what structural elements differentiate TTLL glycylases from glutamylases, with which they share the common TTL scaffold, we determined the TTLL3 X-ray structure at 2.3-Å resolution. This structure reveals two architectural elements unique to glycyl initiases and critical for their activity. Thus, our work sheds light on the structural and functional diversification of TTLL enzymes, and constitutes an initial important step toward understanding how the tubulin code is written through the intersection of activities of multiple TTLL enzymes.
机译:糖基化和谷氨酰化,甘氨酸和谷氨酸的翻译后添加到固有紊乱的微管蛋白C末端尾巴中的遗传编码的谷氨酸中,对于纤毛和鞭毛的生物发生和稳定性至关重要,并在后生动物的发育中起重要作用。微管蛋白酪氨酸连接酶样(TTLL)酶的多样化家族成员催化这些修饰,这些修饰是进化上保守的复杂微管蛋白密码的一部分,该密码子调节微管与细胞效应子的相互作用。 TTLL酶的位点特异性及其生化相互作用仍然未知。在这里,我们报告微管蛋白糖化酶的体外表征。我们显示TTLL3在四个位置按层次顺序将β-微管蛋白尾巴糖基化,并且TTLL3和谷氨酰胺酶TTLL7竞争微管蛋白尾巴上的重叠位点,为在轴蛋白中观察到的谷氨酰化和糖基化之间的反相关提供了分子基础。这种反相关性说明了如何通过相关但不同的TTLL酶的活性产生以两种不同的翻译后修饰编写的组合微管蛋白密码。为了阐明哪些结构元素将TTLL糖化酶与谷氨酰胺酶区分开来,它们具有共同的TTL支架,我们确定了2.3-Å分辨率的TTLL3 X射线结构。该结构揭示了两个对于缩水甘油基引发酶而言独特的建筑元素,这对于它们的活性至关重要。因此,我们的工作揭示了TTLL酶的结构和功能的多样化,并构成了了解如何通过多种TTLL酶的活性交汇来书写微管蛋白代码的重要第一步。

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