Kelly Maria S, Capelli Riccardo, Dima Ruxandra I, Carloni Paolo
Department of Chemistry, University of Cincinnati, Cincinnati, Ohio 45221, United States.
Department of Biosciences, Università degli Studi di Milano, 20133 Milano, Italy.
J Chem Inf Model. 2025 May 12;65(9):4655-4661. doi: 10.1021/acs.jcim.5c00421. Epub 2025 Apr 21.
Several dozen mutations in the M87 isoform of the spastin enzyme have been associated with mobility impairment in hereditary spastic paraplegias. Some of them impact the structural determinants of two functional conformations of the protein: spiral and ring. Here we investigate the possible patterns between these disease-related residues in spastin and aligned regions in the closely related protein katanin toward their role in the transition of the two conformations, which is essential for both enzymes' function. By performing a variety of molecular simulations (including metadynamics) on katanin, we suggest that about one-fourth of the known M87 spastin disease-associated mutations also affect the interconversion and/or the stability of a previously unrecognized intermediate of the katanin transition. The protocol used here can be applied to the study of conformational changes in other large biomolecular complexes.
痉挛素酶的M87亚型中的几十种突变与遗传性痉挛性截瘫的运动功能障碍有关。其中一些突变影响了该蛋白质两种功能构象(螺旋和环状)的结构决定因素。在此,我们研究了痉挛素中这些与疾病相关的残基与密切相关的蛋白质katanin中的比对区域之间的可能模式,以了解它们在两种构象转变中的作用,这对两种酶的功能都至关重要。通过对katanin进行各种分子模拟(包括元动力学),我们发现已知的M87痉挛素疾病相关突变中约四分之一也会影响katanin转变过程中一种先前未被识别的中间体的相互转化和/或稳定性。这里使用的方案可应用于研究其他大型生物分子复合物的构象变化。