半胱氨酸突变对SOD1结构动力学和功能损害的影响:对肌萎缩性侧索硬化症致病性的见解。

Jessica Jeejan, Lawanya Rao, Shivank Sadasivan, Richa Lopes, Norine Dsouza
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摘要

肌萎缩性侧索硬化症(ALS)是一种罕见的神经退行性疾病,常见于美国和欧洲人群,其发病和进展受超氧化物歧化酶1 (SOD1)蛋白突变的显著影响。虽然先前的研究已经强调了SOD1金属结合区和催化区突变和二聚化的影响,但涉及n端半胱氨酸残基的突变的影响仍未被探索。本研究探讨了SOD1 n端第6位半胱氨酸转色氨酸、Phe、Ser和Gly突变对其结构动力学和功能损伤的影响。我们使用polyphen2、PROVEAN、Meta-SNP和PhD-SNP进行计算分析,预测突变是有害的,它们的负面影响可能有助于疾病的发展。此外,通过mCSM、SDM、DUET、Dynamut2和PremPS分析的稳定性研究和键模式变化揭示了自由能的变化和分子内相互作用的破坏。分子动力学研究揭示了突变之间稳定性模式的明显变化,特别是在Cys6Trp和Cys6Phe中。所有的突变都主要改变了蛋白质的催化区;此外,Cys6Phe和Cys6Gly在金属结合区引起破坏。使用MM/PBSA分析突变对SOD1二聚化的影响显示,由于Cys6Phe突变,SOD1不稳定。这些发现为患者观察到的临床症状提供了分子见解,突出了Cys6Phe突变对SOD1金属结合和催化环以及二聚体形成不稳定的关键影响。总的来说,我们的分析为SOD1突变引起的结构变化的分子机制提供了有价值的见解,有助于更深入地了解它们在ALS致病性中的作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Impact of cysteine mutations on the structural dynamics and functional impairment of SOD1: insights into the pathogenicity of amyotrophic lateral sclerosis.

Amyotrophic lateral sclerosis (ALS) is a rare neurodegenerative disease prevalent in American and European populations, with its onset and progression significantly influenced by mutations in the superoxide dismutase 1 (SOD1) protein. While previous studies have highlighted the effects of mutations in the metal-binding region and catalytic region and dimerisation of SOD1, the impact of mutations involving the Cysteine residue at the N-terminal end remains unexplored. This study investigates the effects of Cysteine-to-Trp, Phe, Ser, and Gly mutations at the 6th position of SOD1's N-terminal end on its structural dynamics and functional impairment. Our computational analysis using PolyPhen-2, PROVEAN, Meta-SNP, and PhD-SNP predicted mutations to be deleterious, with their negative impacts likely contributing to disease development. Furthermore, stability studies and bonding pattern changes due to the mutations, analysed by mCSM, SDM, DUET, Dynamut2, and PremPS revealed changes in free energy and disruption in intramolecular interactions. The molecular dynamics studies revealed distinct changes in stability patterns among the mutations, particularly in Cys6Trp and Cys6Phe. All the mutations primarily altered the catalytic region of the protein; additionally, Cys6Phe and Cys6Gly caused disruption in the metal-binding region. The impact of mutations on the dimerisation of SOD1, analysed using MM/PBSA showed destabilisation due to Cys6Phe mutation. These findings provide molecular insights into the clinical symptoms observed in patients, highlighting the critical impact of the Cys6Phe mutation on the metal-binding and catalytic loops of SOD1 along with destabilisation of dimer formation. Overall, our analysis offers valuable insights into the molecular mechanisms driving structural changes in SOD1 due to mutations, contributing to a deeper understanding of their role in ALS pathogenicity.

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