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Local Destabilization of the Metal-Binding Region in HumanudCopper−Zinc Superoxide Dismutase by Remote Mutations Is audPossible Determinant for Progression of ALS

机译:人 ud中金属结合区的局部失稳通过远程突变的铜锌超氧化物歧化酶是 udALS进展的可能决定因素

摘要

More than 100 distinct mutations in the gene CuZnSOD encoding human copper–zinc superoxide dismutase (CuZnSOD) have been associated with familial amyotrophic lateral sclerosis (fALS), a fatal neuronal disease. Many studies of different mutant proteins have found effects on protein stability, catalytic activity, and metal binding, but without a common pattern. Notably, these studies were often performed under conditions far from physiological. Here, we have used experimental conditions of pH 7 and 37 °C and at an ionic strength of 0.2 M to mimic physiological conditions as close as possible in a sample of pure protein. Thus, by using NMR spectroscopy, we have analyzed amide hydrogen exchange of the fALS-associated I113T CuZnSOD variant in its fully metalated state, both at 25 and 37 °C, where ^(15)N relaxation data, as expected, reveals that CuZnSOD I113T exists as a dimer under these conditions. The local dynamics at 82% of all residues have been analyzed in detail. When compared to the wild-type protein, it was found that I113T CuZnSOD is particularly destabilized locally at the ion binding sites of loop 4, the zinc binding loop, which results in frequent exposure of the aggregation prone outer β-strands I and VI of the β-barrel, possibly enabling fibril or aggregate formation. A similar study (Museth, A. K., et al. (2009) Biochemistry, 48, 8817–8829) of amide hydrogen exchange at pH 7 and 25 °C on the G93A variant also revealed a selective destabilization of the zinc binding loop. Thus, a possible scenario in ALS is that elevated local dynamics at the metal binding region can result in toxic species from formation of new interactions at local β-strands.
机译:编码人类铜锌超氧化物歧化酶(CuZnSOD)的基因CuZnSOD中的100多个独特突变与致命性神经元性家族性肌萎缩性侧索硬化症(fALS)相关。对不同突变蛋白的许多研究都发现了对蛋白稳定性,催化活性和金属结合的影响,但没有共同的规律。值得注意的是,这些研究通常是在远离生理的条件下进行的。在这里,我们使用了pH为7和37°C且离子强度为0.2 M的实验条件来模拟纯蛋白质样品中尽可能接近的生理条件。因此,通过使用NMR光谱,我们在25和37°C下分析了处于完全金属化状态的与fALS相关的I113T CuZnSOD变体的酰胺氢交换,如所预期的,^(15)N弛豫数据表明CuZnSOD在这些条件下,I113T作为二聚体存在。详细分析了所有残基中82%的局部动力学。当与野生型蛋白比较时,发现I113T CuZnSOD在环4(锌结合环)的离子结合位点特别不稳定,这导致频繁暴露于聚集体的容易聚集的外部β链I和VI。 β-桶,可能使原纤维或聚集体形成。一项类似的研究(Museth,A. K.等人(2009)Biochemistry,48,8817–8829)在pH值为7和25°C的G93A变体上进行的酰胺氢交换也显示出锌结合环的选择性失稳。因此,ALS中的一种可能情况是,金属结合区的局部动力学升高可能会由于在局部β链上形成新的相互作用而导致有毒物质。

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