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二硫键在重组人朊病毒蛋白折叠和稳定性中的作用。

The role of disulfide bridge in the folding and stability of the recombinant human prion protein.

作者信息

Maiti N R, Surewicz W K

机构信息

Department of Pathology, Case Western Reserve University, Cleveland, Ohio 44106, USA.

出版信息

J Biol Chem. 2001 Jan 26;276(4):2427-31. doi: 10.1074/jbc.M007862200. Epub 2000 Nov 7.

DOI:10.1074/jbc.M007862200
PMID:11069909
Abstract

It is believed that the critical step in the pathogenesis of transmissible spongiform encephalopathies is a transition of prion protein (PrP) from an alpha-helical conformation, PrP(C), to a beta-sheet-rich form, PrP(Sc). Native prion protein contains a single disulfide bond linking Cys residues at positions 179 and 214. To elucidate the role of this bridge in the stability and folding of the protein, we studied the reduced form of the recombinant human PrP as well as the variant of PrP in which cysteines were replaced with alanine residues. At neutral pH, the reduced prion protein and the Cys-free mutant were insoluble and formed amorphous aggregates. However, the proteins could be refolded in a monomeric form under the conditions of mildly acidic pH. Spectroscopic experiments indicate that the monomeric Cys-free and reduced PrP have molten globule-like properties, i.e. they are characterized by compromised tertiary interactions, an increased exposure of hydrophobic surfaces, lack of cooperative unfolding transition in urea, and partial loss of native (alpha-helical) secondary structure. In the presence of sodium chloride, these partially unfolded proteins undergo a transition to a beta-sheet-rich structure. However, this transition is invariably associated with protein oligomerization. The present data argue against the notion that reduced prion protein can exist in a stable monomeric form that is rich in beta-sheet structure.

摘要

人们认为,传染性海绵状脑病发病机制中的关键步骤是朊病毒蛋白(PrP)从α-螺旋构象PrP(C)转变为富含β-折叠的形式PrP(Sc)。天然朊病毒蛋白含有一个二硫键,连接第179位和第214位的半胱氨酸残基。为了阐明该二硫键在蛋白质稳定性和折叠中的作用,我们研究了重组人PrP的还原形式以及半胱氨酸被丙氨酸残基取代的PrP变体。在中性pH值下,还原的朊病毒蛋白和无半胱氨酸突变体不溶并形成无定形聚集体。然而,在轻度酸性pH条件下,这些蛋白质可以以单体形式重新折叠。光谱实验表明,无半胱氨酸和还原的单体PrP具有类熔球性质,即它们的特征是三级相互作用受损、疏水表面暴露增加、在尿素中缺乏协同解折叠转变以及天然(α-螺旋)二级结构部分丧失。在氯化钠存在下,这些部分展开的蛋白质会转变为富含β-折叠的结构。然而,这种转变总是与蛋白质寡聚化相关。目前的数据与还原的朊病毒蛋白可以以富含β-折叠结构的稳定单体形式存在这一观点相悖。

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