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鉴定引发天然态蛋白聚集的分子间相互作用。

Characterizing intermolecular interactions that initiate native-like protein aggregation.

机构信息

Department of Chemistry, University of Cambridge, Cambridge, United Kingdom.

出版信息

Biophys J. 2012 Jun 6;102(11):2595-604. doi: 10.1016/j.bpj.2012.03.057. Epub 2012 Jun 5.

Abstract

Folded proteins can access aggregation-prone states without the need for transitions that cross the energy barriers for unfolding. In this study we characterized the initial steps of aggregation from a native-like state of the acylphosphatase from Sulfolobus solfataricus (Sso AcP). Using computer simulations restrained by experimental hydrogen/deuterium (H/D) exchange data, we provide direct evidence that under aggregation-promoting conditions Sso AcP populates a conformational ensemble in which native-like structure is retained throughout the sequence in the absence of local unfolding (N∗), although the protein exhibits an increase in hydrodynamic radius and dynamics. This transition leads an edge strand to experience an increased affinity for a specific unfolded segment of the protein. Direct measurements by means of H/D exchange rates, isothermal titration calorimetry, and intermolecular relaxation enhancements show that after formation of N∗, an intermolecular interaction with an antiparallel arrangement is established between the edge strand and the unfolded segment of the protein. However, under conditions that favor the fully native state of Sso AcP, such an interaction is not established. Thus, these results reveal a novel (to our knowledge) self-assembly mechanism for a folded protein that is based on the increased flexibility of highly aggregation-prone segments in the absence of local unfolding.

摘要

折叠蛋白可以进入易于聚集的状态,而无需跨越展开的能量障碍的转变。在这项研究中,我们对来自嗜热硫化叶菌的酰基磷酸酶(Sso AcP)的天然样状态的聚集初始步骤进行了表征。使用受实验氢/氘(H/D)交换数据约束的计算机模拟,我们提供了直接证据,表明在促进聚集的条件下,Sso AcP 分布在一个构象 ensemble 中,其中整个序列中保留了天然样结构,而没有局部展开(N∗),尽管该蛋白显示出流体动力学半径和动力学的增加。这种转变导致边缘链对蛋白质特定展开片段的亲和力增加。通过 H/D 交换速率、等温滴定量热法和分子间弛豫增强的直接测量表明,在形成 N∗之后,边缘链与蛋白质的展开片段之间建立了具有反平行排列的分子间相互作用。然而,在有利于 Sso AcP 完全天然状态的条件下,不会建立这种相互作用。因此,这些结果揭示了一种新的(据我们所知)折叠蛋白自组装机制,该机制基于在没有局部展开的情况下高度易于聚集的片段的柔韧性增加。

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