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氢/氘交换质谱分析酵母朊病毒Ure2p组装成蛋白原纤维过程中伴随的构象变化。

Hydrogen/deuterium exchange mass spectrometric analysis of conformational changes accompanying the assembly of the yeast prion Ure2p into protein fibrils.

作者信息

Redeker Virginie, Halgand Frédéric, Le Caer Jean-Pierre, Bousset Luc, Laprévote Olivier, Melki Ronald

机构信息

Laboratoire d'Enzymologie et Biochimie Structurales, CNRS, Avenue de la Terrasse, 91198 Gif-sur-Yvette Cedex, France.

出版信息

J Mol Biol. 2007 Jun 15;369(4):1113-25. doi: 10.1016/j.jmb.2007.04.018. Epub 2007 Apr 12.

Abstract

The Ure2 protein from baker's yeast (Saccharomyces cerevisiae) has prion properties. In vitro, at neutral pH, soluble Ure2p forms long, twisted fibrils. Two models have been proposed to account for Ure2p polymerization. The first postulates that a segment of 70 amino acid residues in the flexible N-terminal domain from different Ure2p molecules forms a parallel superpleated beta-structure running along the fibrils. The second hypothesizes that assembly of full-length Ure2p is driven by limited conformational rearrangements and non-native inter- and intramolecular interactions. The knowledge of the three-dimensional structure of the fibrillar form of Ure2p is critical for understanding the molecular events leading to the polymerization of soluble Ure2p into fibrils and hence for the design of inhibitors that might have therapeutic potential as yeast prions possessing domains rich in N and Q residues, similar to huntingtin. Solvent-accessibility studies using hydrogen/deuterium exchange monitored by mass spectrometry (HXMS) can provide insights into the structure of the fibrillar form of Ure2p and characterize at the molecular level the conformational rearrangements that occur upon assembly, in particular through the identification of protected regions and their localization in the overall structure of the protein. We have analyzed the changes in Ure2p structure associated with its assembly into fibrils using HXMS. The deuterium incorporation profile along the sequence allows the identification of the regions that exhibit the most important conformational change. Our data reveal that Ure2p undergoes minor structural changes upon assembly. While polypeptides [82-92] and [13-37] exhibit significant increased and decreased exposure to the solvent, respectively, no marked change was observed for the rest of the protein upon assembly. Our results afford new insights into the conformational rearrangements that lead to the assembly of Ure2p into fibrils and the propagation of the [URE3] element in yeast.

摘要

来自面包酵母(酿酒酵母)的Ure2蛋白具有朊病毒特性。在体外,中性pH条件下,可溶性Ure2p形成长的扭曲纤维。已提出两种模型来解释Ure2p的聚合。第一种假设不同Ure2p分子柔性N端结构域中的一段70个氨基酸残基形成沿纤维排列的平行超褶β结构。第二种假设全长Ure2p的组装是由有限的构象重排以及非天然的分子间和分子内相互作用驱动的。了解Ure2p纤维状形式的三维结构对于理解导致可溶性Ure2p聚合成纤维的分子事件至关重要,因此对于设计可能具有治疗潜力的抑制剂也很重要,因为酵母朊病毒拥有富含N和Q残基的结构域,类似于亨廷顿蛋白。使用质谱监测的氢/氘交换进行的溶剂可及性研究(HXMS)可以深入了解Ure2p纤维状形式的结构,并在分子水平上表征组装时发生的构象重排,特别是通过识别受保护区域及其在蛋白质整体结构中的定位。我们使用HXMS分析了与Ure2p组装成纤维相关的结构变化。沿序列的氘掺入谱允许识别表现出最重要构象变化的区域。我们的数据表明,Ure2p在组装时经历了微小的结构变化。虽然多肽[82 - 92]和[13 - 37]分别表现出对溶剂的暴露显著增加和减少,但组装后蛋白质的其余部分未观察到明显变化。我们的结果为导致Ure2p组装成纤维以及酵母中[URE3]元件传播的构象重排提供了新的见解。

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