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A structural modeling approach for the understanding of initiation and elongation of ALS-linked superoxide dismutase fibrils

机译:用于了解ALS连锁超氧化物歧化酶原纤维的起始和延伸的结构建模方法

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摘要

Familial amyotrophic lateral sclerosis caused by mutations in copper-zinc superoxide dismutase (SOD1) is characterized by the presence of SOD1-rich inclusions in spinal cords. It has been shown that a reduced intra-subunit disulfide bridge apo-SOD1 can rapidly initiate fibrillation forming an inter-subunits disulfide under mild, physiologically accessible conditions. Once initiated, elongation can proceed via recruitment of either apo or partially metallated disulfide-intact SOD1 and the presence of copper, but not zinc, ions inhibit fibrillation. We propose a structural model, refined through molecular dynamics simulations, that, taking into account these experimental findings, provides a molecular explanation for the initiation and the elongation of SOD1 fibrils in physiological conditions. The model indicates the occurrence of a new dimeric unit, prone to interact one with the other due to the presence of a wide hydrophobic surface and specific electrostatic interactions. The model has dimensions consistent with the SOD1 fibril size observed through electron microscopy and provides a structural basis for the understanding of SOD1 fibrillation. [Figure not available: see fulltext.]
机译:由铜锌超氧化物歧化酶(SOD1)突变引起的家族性肌萎缩性侧索硬化症的特征在于脊髓中存在富含SOD1的内含物。已经显示,在温和的,生理上可接近的条件下,还原的亚基内二硫键apo-SOD1可以迅速引发原纤维化,形成亚硫基间二硫键。一旦开始,可以通过募集载脂蛋白或部分金属化的二硫键完整的SOD1进行延伸,并且铜离子(而非锌离子)的存在会抑制原纤维化。我们提出了一种结构模型,通过分子动力学模拟对其进行了改进,并考虑到这些实验结果,为生理条件下SOD1原纤维的引发和伸长提供了分子解释。该模型表明出现了一个新的二聚体单元,由于存在较宽的疏水性表面和特定的静电相互作用,因此易于彼此相互作用。该模型的尺寸与通过电子显微镜观察到的SOD1原纤维大小一致,并为理解SOD1原纤维化提供了结构基础。 [图不可用:请参见全文。]

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