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核磷蛋白三螺旋束和侧翼无结构尾巴在与G-四链体DNA相互作用中的协同作用。

Synergic role of nucleophosmin three-helix bundle and a flanking unstructured tail in the interaction with G-quadruplex DNA.

作者信息

Arcovito Alessandro, Chiarella Sara, Della Longa Stefano, Di Matteo Adele, Lo Sterzo Carlo, Scaglione Giovanni Luca, Federici Luca

机构信息

From the Istituto di Biochimica e Biochimica Clinica, Università Cattolica del Sacro Cuore, 00168 Rome, Italy.

Ce.S.I. Centro Scienze dell'Invecchiamento, "Fondazione Università D'Annunzio," 66013 Chieti, Italy, Dipartimento di Scienze Biochimiche, Sapienza Università di Roma, 00185 Rome, Italy.

出版信息

J Biol Chem. 2014 Aug 1;289(31):21230-41. doi: 10.1074/jbc.M114.565010. Epub 2014 Jun 21.

Abstract

Nucleophosmin (NPM1) is a nucleocytoplasmic shuttling protein, mainly localized at nucleoli, that plays a number of functions in ribosome biogenesis and export, cell cycle control, and response to stress stimuli. NPM1 is the most frequently mutated gene in acute myeloid leukemia; mutations map to the C-terminal domain of the protein and cause its denaturation and aberrant cytoplasmic translocation. NPM1 C-terminal domain binds G-quadruplex regions at ribosomal DNA and at gene promoters, including the well characterized sequence from the nuclease-hypersensitive element III region of the c-MYC promoter. These activities are lost by the leukemic variant. Here we analyze the NPM1/G-quadruplex interaction, focusing on residues belonging to both the NPM1 terminal three-helix bundle and a lysine-rich unstructured tail, which has been shown to be necessary for high affinity recognition. We performed extended site-directed mutagenesis and measured binding rate constants through surface plasmon resonance analysis. These data, supported by molecular dynamics simulations, suggest that the unstructured tail plays a double role in the reaction mechanism. On the one hand, it facilitates the formation of an encounter complex through long range electrostatic interactions; on the other hand, it directly contacts the G-quadruplex scaffold through multiple and transient electrostatic interactions, significantly enlarging the contact surface.

摘要

核磷蛋白(NPM1)是一种穿梭于细胞核与细胞质之间的蛋白质,主要定位于核仁,在核糖体生物合成与输出、细胞周期调控以及应激刺激反应中发挥多种功能。NPM1是急性髓系白血病中最常发生突变的基因;突变位于该蛋白的C末端结构域,导致其变性并发生异常的细胞质易位。NPM1的C末端结构域可结合核糖体DNA以及基因启动子处的G-四链体区域,包括c-MYC启动子核酸酶超敏元件III区域中特征明确的序列。白血病变体则丧失了这些活性。在此,我们分析了NPM1与G-四链体的相互作用,重点关注属于NPM1末端三螺旋束以及富含赖氨酸的无结构尾部的残基,该无结构尾部已被证明是高亲和力识别所必需的。我们进行了扩展的定点诱变,并通过表面等离子体共振分析测量了结合速率常数。这些数据在分子动力学模拟的支持下,表明无结构尾部在反应机制中发挥双重作用。一方面,它通过长程静电相互作用促进相遇复合物的形成;另一方面,它通过多个瞬时静电相互作用直接接触G-四链体支架,显著扩大了接触表面。

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