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恒 pH 值分子动力学模拟揭示了人类朊病毒蛋白的富含β结构形式。

Constant-pH molecular dynamics simulations reveal a β-rich form of the human prion protein.

机构信息

Instituto de Tecnologia Química e Biológica, Universidade Nova de Lisboa, Av. da República, EAN, 2780-157 Oeiras, Portugal.

出版信息

J Phys Chem B. 2010 Oct 7;114(39):12692-700. doi: 10.1021/jp104753t.

Abstract

The misfolding of the prion protein (PrP) into a pathogenic β-rich form (PrP(Sc)) has been suggested to occur in the endocytic pathway, triggered by low pH. In this work we performed several constant-pH molecular dynamics simulations of human PrP 90-231 in the pH range 2-7, totaling more than 2 μs. We observed a strong conformational pH dependence where on average the helix content decreased and the β content increased toward acidic pH. Unlike some proposed models, the flexible N-terminus region did not gain stable structure at low pH. Rather, the main structural changes occurred on the helix-rich C-terminus core, as proposed in other models, namely, in the regions around 135-155 and 185-200. The protonation of His187 is found to be associated with a loss of interaction between two PrP subdomains, potentially playing a major role in the misfolding process. In one of the simulations at pH 2, a stable β-rich structure was formed that may be an intermediate of PrP(Sc) formation, indicating that misfolding may precede dimerization.

摘要

朊病毒蛋白(PrP)错误折叠成富含β结构的致病性形式(PrP(Sc))被认为发生在内吞途径中,由低 pH 值触发。在这项工作中,我们在 pH 值 2-7 的范围内对人类 PrP 90-231 进行了多次恒 pH 值分子动力学模拟,总时长超过 2 μs。我们观察到强烈的构象 pH 值依赖性,平均而言,螺旋含量降低,β含量在酸性 pH 值下增加。与一些提出的模型不同,柔性 N 端区域在低 pH 值下不会获得稳定的结构。相反,主要的结构变化发生在富含螺旋的 C 端核心,如其他模型所提出的,即在 135-155 和 185-200 附近的区域。发现 His187 的质子化与两个 PrP 亚结构之间的相互作用丧失有关,这可能在错误折叠过程中起主要作用。在 pH 值为 2 的一次模拟中,形成了一种稳定的富含β结构的中间产物,这可能是 PrP(Sc)形成的中间产物,表明错误折叠可能先于二聚化。

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