Macke Amanda C, Kelly Maria S, Varikoti Rohith Anand, Mullen Sarah, Groves Daniel, Forbes Clare, Dima Ruxandra I
Department of Chemistry, University of Cincinnati, Cincinnati, Ohio 45221, United States.
Department of Chemistry, The College of Wooster, Wooster, Ohio 44691, United States.
J Phys Chem B. 2022 Dec 22;126(50):10569-10586. doi: 10.1021/acs.jpcb.2c05288. Epub 2022 Dec 7.
Severing proteins are nanomachines from the AAA+ (ATPases associated with various cellular activities) superfamily whose function is to remodel the largest cellular filaments, microtubules. The standard AAA+ machines adopt hexameric ring structures for functional reasons, while being primarily monomeric in the absence of the nucleotide. Both major severing proteins, katanin and spastin, are believed to follow this trend. However, studies proposed that they populate lower-order oligomers in the presence of cofactors, which are functionally relevant. Our simulations show that the preferred oligomeric assembly is dependent on the binding partners and on the type of severing protein. Essential dynamics analysis predicts that the stability of an oligomer is dependent on the strength of the interface between the helical bundle domain (HBD) of a monomer and the convex face of the nucleotide binding domain (NBD) of a neighboring monomer. Hot spots analysis found that the region consisting of the HBD tip and the C-terminal (CT) helix is the only common element between the allosteric networks responding to nucleotide, substrate, and intermonomer binding. Clustering analysis indicates the existence of multiple pathways for the transition between the secondary structure of the HBD tip in monomers and the structure(s) it adopts in oligomers.
切割蛋白是来自AAA+(与各种细胞活动相关的ATP酶)超家族的纳米机器,其功能是重塑最大的细胞细丝——微管。由于功能原因,标准的AAA+机器采用六聚体环结构,而在没有核苷酸的情况下主要是单体形式。两种主要的切割蛋白,katanin和spastin,都被认为遵循这一趋势。然而,研究表明它们在存在辅因子的情况下会形成低聚体,这些辅因子具有功能相关性。我们的模拟表明,优选的低聚体组装取决于结合伙伴和切割蛋白的类型。本质动力学分析预测,低聚体的稳定性取决于单体的螺旋束结构域(HBD)与相邻单体的核苷酸结合结构域(NBD)凸面之间界面的强度。热点分析发现,由HBD尖端和C末端(CT)螺旋组成的区域是响应核苷酸、底物和单体间结合的变构网络之间唯一的共同元素。聚类分析表明,单体中HBD尖端的二级结构与其在低聚体中采用的结构之间存在多种转变途径。