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结构和大规模分析揭示了促进 NMT 催化赖氨酸和甘氨酸豆蔻酰化的交织途径。

Structural and Large-scale Analysis Unveil the Intertwined Paths Promoting NMT-catalyzed Lysine and Glycine Myristoylation.

机构信息

Université Paris Saclay, CEA, CNRS, Institute for Integrative Biology of the Cell (I2BC), 91198 Gif-sur-Yvette cedex, France.

Université Paris Saclay, CEA, CNRS, Institute for Integrative Biology of the Cell (I2BC), 91198 Gif-sur-Yvette cedex, France.

出版信息

J Mol Biol. 2022 Nov 30;434(22):167843. doi: 10.1016/j.jmb.2022.167843. Epub 2022 Sep 29.

DOI:10.1016/j.jmb.2022.167843
PMID:36181773
Abstract

N-myristoyltransferases (NMTs) catalyze protein myristoylation, a lipid modification crucial for cell survival and a range of pathophysiological processes. Originally thought to modify only N-terminal glycine α-amino groups (G-myristoylation), NMTs were recently shown to also modify lysine ε-amino groups (K-myristoylation). However, the clues ruling NMT-dependent K-myristoylation and the full range of targets are currently unknown. Here we combine mass spectrometry, kinetic studies, in silico analysis, and crystallography to identify the specific features driving each modification. We show that direct interactions between the substrate's reactive amino group and the NMT catalytic base promote K-myristoylation but with poor efficiency compared to G-myristoylation, which instead uses a water-mediated interaction. We provide evidence of depletion of proteins with NMT-dependent K-myristoylation motifs in humans, suggesting evolutionary pressure to prevent this modification in favor of G-myristoylation. In turn, we reveal that K-myristoylation may only result from post-translational events. Our studies finally unravel the respective paths towards K-myristoylation or G-myristoylation, which rely on a very subtle tradeoff embracing the chemical landscape around the reactive group.

摘要

N-豆蔻酰转移酶 (NMTs) 催化蛋白质豆蔻酰化,这是一种对细胞存活和多种病理生理过程至关重要的脂质修饰。最初认为 NMTs 仅修饰 N 端甘氨酸 α-氨基基团(G-豆蔻酰化),但最近发现 NMTs 还修饰赖氨酸 ε-氨基基团(K-豆蔻酰化)。然而,目前尚不清楚决定 NMT 依赖性 K-豆蔻酰化和全范围靶标的线索。在这里,我们结合质谱、动力学研究、计算机分析和晶体学来确定每种修饰的特定特征。我们表明,底物反应性氨基基团与 NMT 催化碱之间的直接相互作用促进 K-豆蔻酰化,但与 G-豆蔻酰化相比效率较差,G-豆蔻酰化则使用水介导的相互作用。我们提供了人类中具有 NMT 依赖性 K-豆蔻酰化基序的蛋白质耗竭的证据,这表明存在进化压力以防止这种修饰而有利于 G-豆蔻酰化。反过来,我们揭示了 K-豆蔻酰化可能仅来自翻译后事件。我们的研究最终揭示了 K-豆蔻酰化或 G-豆蔻酰化的各自途径,这依赖于围绕反应性基团的化学景观的微妙权衡。

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Structural and Large-scale Analysis Unveil the Intertwined Paths Promoting NMT-catalyzed Lysine and Glycine Myristoylation.结构和大规模分析揭示了促进 NMT 催化赖氨酸和甘氨酸豆蔻酰化的交织途径。
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