鼠伤寒沙门氏菌存活蛋白扭曲结构域交换二聚体中稳定相互作用的见解。

Yamuna Kalyani Mathiharan, H S Savithri, M R N Murthy
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引用次数: 4

摘要

鼠伤寒沙门氏菌存活蛋白(StSurE)是一种二聚体蛋白,具有磷酸酶的功能。SurE二聚体是通过在两个原聚体之间交换含有一对β链和c端螺旋的环而形成的。在之前的一项研究中,Asp230和His234残基突变为Ala,以消除被认为对c端螺旋交换至关重要的氢键。这些突变导致功能失活和扭曲的二聚体,其中两个原聚体旋转167°。在H234A和D230A/H234A突变体的二聚体界面上发现了新的含Glu112的盐桥。为了探究盐桥在扭曲结构稳定性中的作用,构建了E112A、E112A/D230A、E112A/H234A、E112A/D230A/H234A、R179L/H180A/H234A和E112A/R179L/H180A/H234A突变体。可以确定突变体E112A、E112A/H234A和E112A/D230A的x射线晶体结构。E112A和E112A/H234A突变体的二聚体结构与天然二聚体相似,而E112A/D230A突变体与天然二聚体的a链叠加,在B链之间有11°的剩余旋转。E112A/H234A突变体几乎恢复了原有的二聚体结构,这表明在H234A和D230A/H234A突变体中观察到的新盐桥确实是其扭曲结构稳定的原因。这些突变体的催化活性也得到了恢复,这意味着适当的二聚体组织对于SurE的活性是必要的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Insights into stabilizing interactions in the distorted domain-swapped dimer of Salmonella typhimurium survival protein.

The survival protein SurE from Salmonella typhimurium (StSurE) is a dimeric protein that functions as a phosphatase. SurE dimers are formed by the swapping of a loop with a pair of β-strands and a C-terminal helix between two protomers. In a previous study, the Asp230 and His234 residues were mutated to Ala to abolish a hydrogen bond that was thought to be crucial for C-terminal helix swapping. These mutations led to functionally inactive and distorted dimers in which the two protomers were related by a rotation of 167°. New salt bridges involving Glu112 were observed in the dimeric interface of the H234A and D230A/H234A mutants. To explore the role of these salt bridges in the stability of the distorted structure, E112A, E112A/D230A, E112A/H234A, E112A/D230A/H234A, R179L/H180A/H234A and E112A/R179L/H180A/H234A mutants were constructed. X-ray crystal structures of the E112A, E112A/H234A and E112A/D230A mutants could be determined. The dimeric structures of the E112A and E112A/H234A mutants were similar to that of native SurE, while the E112A/D230A mutant had a residual rotation of 11° between the B chains upon superposition of the A chains of the mutant and native dimers. The native dimeric structure was nearly restored in the E112A/H234A mutant, suggesting that the new salt bridge observed in the H234A and D230A/H234A mutants was indeed responsible for the stability of their distorted structures. Catalytic activity was also restored in these mutants, implying that appropriate dimeric organization is necessary for the activity of SurE.

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