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朊病毒形成结构域 HET-s 的原纤维延伸机制:生长极性的拓扑学证据。

Fibril elongation mechanisms of HET-s prion-forming domain: topological evidence for growth polarity.

机构信息

Department of Physics, Padua University, CNISM, Padova Unit, Padova I-35131, Italy.

出版信息

Proteins. 2011 Nov;79(11):3067-81. doi: 10.1002/prot.23133. Epub 2011 Aug 30.

DOI:10.1002/prot.23133
PMID:21989930
Abstract

The prion-forming C-terminal domain of the fungal prion HET-s forms infectious amyloid fibrils at physiological pH. The conformational switch from the nonprion soluble form to the prion fibrillar form is believed to have a functional role, as HET-s in its prion form participates in a recognition process of different fungal strains. On the basis of the knowledge of the high-resolution structure of the prion forming domain HET-s(218-289) in its fibrillar form, we here present a numerical simulation of the fibril growth process, which emphasizes the role of the topological properties of the fibrillar structure. An accurate thermodynamic analysis of the way an intervening HET-s chain is recruited to the tip of the growing fibril suggests that elongation proceeds through a dock and lock mechanism. First, the chain docks onto the fibril by forming the longest β-strands. Then, the re-arrangement in the fibrillar form of all the rest of the molecule takes place. Interestingly, we also predict that one side of the HET-s fibril is more suitable for sustaining its growth with respect to the other. The resulting strong polarity of fibril growth is a consequence of the complex topology of HET-s fibrillar structure, as the central loop of the intervening chain plays a crucially different role in favoring or not the attachment of the C-terminus tail to the fibril, depending on the growth side.

摘要

真菌朊病毒 HET-s 的形成朊病毒的 C 末端结构域在生理 pH 下形成感染性的淀粉样纤维。从非朊病毒可溶性形式到朊病毒纤维形式的构象转换被认为具有功能作用,因为其朊病毒形式的 HET-s 参与了不同真菌菌株的识别过程。基于其纤维形式的朊病毒形成域 HET-s(218-289)的高分辨率结构知识,我们在此提出了纤维生长过程的数值模拟,该模拟强调了纤维结构的拓扑性质的作用。对介入的 HET-s 链被招募到生长纤维尖端的方式进行准确的热力学分析表明,伸长是通过对接和锁定机制进行的。首先,通过形成最长的β-链,链对接到纤维上。然后,分子的其余部分在纤维形式中重新排列。有趣的是,我们还预测 HET-s 纤维的一侧相对于另一侧更适合维持其生长。纤维生长的强烈极性是 HET-s 纤维状结构的复杂拓扑的结果,因为介入链的中央环在有利于或不利于 C 末端尾巴附着到纤维上时起着至关重要的不同作用,这取决于生长侧。

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