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解析由于人类 SOD1 蛋白突变 D83G 导致 FALS 疾病而导致的金属结合丧失。

Deciphering the loss of metal binding due to mutation D83G of human SOD1 protein causing FALS disease.

机构信息

Bioinformatics lab, Department of Biotechnology, School of Biosciences and Technology, VIT University, Vellore - 632014, Tamil Nadu, India.

Bioinformatics lab, Department of Biotechnology, School of Biosciences and Technology, VIT University, Vellore - 632014, Tamil Nadu, India.

出版信息

Int J Biol Macromol. 2018 Feb;107(Pt A):521-529. doi: 10.1016/j.ijbiomac.2017.09.019. Epub 2017 Sep 9.

Abstract

Mutations in Cu/Zn superoxide dismutase 1 (SOD1) protein are found to be the causative factor, behind the majority of familial amyotrophic later sclerosis (FALS) cases. The mutations particularly on the metal (Zn) binding residues are found to increase the disease onset in the individuals suffering from FALS, while the presence of the metal ion (Zn) is essential for the catalytic activity and retaining the protein stability. Thus in our study, we focused on one such metal binding mutant (D83G) and assessed the impact of the mutation on protein structure and function. The influence of mutation was examined dynamically, using discrete molecular dynamics on both the native and mutant SOD1 protein respectively. Accordingly, the variation in conformational stability, residual flexibility and protein compactness along with the change in conformational free energy were monitored over the entire dynamic period. Moreover, the motion of native and mutant SOD1 was also observed via the essential dynamics. Besides, the disparity in Zn ion binding was inspected through distance analysis and steered molecular dynamics, correspondingly. Therefore, the study provides a better understanding over the profound effect of mutation on SOD1, both structurally and functionally, using computational approaches.

摘要

Cu/Zn 超氧化物歧化酶 1(SOD1)蛋白中的突变被发现是大多数家族性肌萎缩侧索硬化症(FALS)病例的致病因素。在患有 FALS 的个体中,金属(Zn)结合残基上的突变被发现会增加疾病的发病时间,而金属离子(Zn)的存在对于催化活性和维持蛋白质稳定性是必不可少的。因此,在我们的研究中,我们专注于一个这样的金属结合突变体(D83G),并评估了突变对蛋白质结构和功能的影响。通过对天然和突变 SOD1 蛋白分别进行离散分子动力学,动态地检查了突变的影响。相应地,在整个动态期间监测构象稳定性、残余柔性和蛋白质紧凑性的变化以及构象自由能的变化。此外,还通过基本动力学观察了天然和突变 SOD1 的运动。此外,还通过距离分析和导向分子动力学相应地检查了 Zn 离子结合的差异。因此,该研究使用计算方法更好地了解了突变对 SOD1 的结构和功能的深远影响。

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