A Major Disease-Related Point Mutation in Spastin Dramatically Alters the Dynamics and Allostery of the Motor.

IF 2.9 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Biochemistry Biochemistry Pub Date : 2025-03-18 Epub Date: 2025-02-26 DOI:10.1021/acs.biochem.4c00693
Shehani Kahawatte, Amanda C Macke, Carter St Clair, Ruxandra I Dima
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引用次数: 0

Abstract

Spastin is a microtubule-severing AAA+ ATPase that is highly expressed in neuronal cells and plays a crucial role in axonal growth, branching, and regeneration. This machine oligomerizes into hexamers in the presence of ATP and microtubule carboxy-terminal tails (CTTs). Conformational changes in spastin hexamers, powered by ATP hydrolysis, apply forces to the microtubule, ultimately leading to the severing of the filament. Mutations disrupt the normal function of spastin, impairing its ability to sever microtubules effectively and leading to abnormal microtubule dynamics in neurons characteristic of the set of neurodegenerative disorders called hereditary spastic paraplegias (HSP). Experimental studies have identified the HSP-related R591S (Drosophila melanogaster numbering) mutation as playing a crucial role in spastin. Given its significant role in HSP, we employed a combination of molecular dynamics simulations with machine learning and graph network-based approaches to identify and quantify the perturbations caused by the R591S HSP mutation on spastin's dynamics and allostery with functional implications. We found that the functional hexamer, upon HSP-related mutation, loses the ability to execute the primary motion associated with the severing action. The study of allosteric changes upon the mutation showed that the regions that are most perturbed are those involved in the formation of the interprotomer contacts. The mutation induces rigidity in the allosteric networks of the motor, making it more likely to experience loss of function as applied perturbations would not be easily dissipated by passing through a variety of alternative paths as in the wild-type (WT) spastin.

一个主要的疾病相关的痉挛蛋白点突变显著地改变了运动的动力学和变构。
Spastin是一种切断微管的AAA+ atp酶,在神经元细胞中高度表达,在轴突生长、分支和再生中起关键作用。这台机器在ATP和微管羧基末端尾部(CTTs)的存在下寡聚成六聚体。在ATP水解的作用下,痉挛素六聚体的构象变化对微管施加力,最终导致丝的切断。突变破坏了spastin的正常功能,削弱了其有效切断微管的能力,导致神经元微管动力学异常,这是一组神经退行性疾病的特征,称为遗传性痉挛性截瘫(HSP)。实验研究已经确定了热刺蛋白相关的R591S(果蝇编号)突变在痉挛蛋白中起着至关重要的作用。鉴于其在HSP中的重要作用,我们采用分子动力学模拟、机器学习和基于图网络的方法相结合的方法来识别和量化R591S HSP突变对spastin的动力学和变构所造成的扰动,并具有功能意义。我们发现,在热休克蛋白相关突变后,功能性六聚体失去了执行与切断动作相关的主要运动的能力。对突变变构变化的研究表明,最受干扰的区域是与原蛋白间接触形成有关的区域。该突变引起了马达变构网络的刚性,使其更有可能经历功能丧失,因为施加的扰动不会像野生型(WT)痉挛蛋白那样通过各种替代途径轻易消散。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Biochemistry Biochemistry
Biochemistry Biochemistry 生物-生化与分子生物学
CiteScore
5.50
自引率
3.40%
发文量
336
审稿时长
1-2 weeks
期刊介绍: Biochemistry provides an international forum for publishing exceptional, rigorous, high-impact research across all of biological chemistry. This broad scope includes studies on the chemical, physical, mechanistic, and/or structural basis of biological or cell function, and encompasses the fields of chemical biology, synthetic biology, disease biology, cell biology, nucleic acid biology, neuroscience, structural biology, and biophysics. In addition to traditional Research Articles, Biochemistry also publishes Communications, Viewpoints, and Perspectives, as well as From the Bench articles that report new methods of particular interest to the biological chemistry community.
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