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P-Collabs:研究多磷酸化 Tau-R2 重复序列中反离子介导的桥接作用。

P-Collabs: Investigating Counterion-Mediated Bridges in the Multiply Phosphorylated Tau-R2 Repeat.

机构信息

Laboratoire de Biochimie Théorique, Université Paris-Cité, CNRS, 13 Rue Pierre et Marie Curie, 75005 Paris, France.

出版信息

J Chem Inf Model. 2024 Aug 26;64(16):6570-6582. doi: 10.1021/acs.jcim.4c00742. Epub 2024 Aug 2.

Abstract

Tau is an intrinsically disordered (IDP) microtubule-associated protein (MAP) that plays a key part in microtubule assembly and organization. The function of tau can be regulated by multiple phosphorylation sites. These post-translational modifications are known to decrease the binding affinity of tau for microtubules, and abnormal tau phosphorylation patterns are involved in Alzheimer's disease. Using all-atom molecular dynamics simulations, we compared the conformational landscapes explored by the tau R2 repeat domain (which comprises a strong tubulin binding site) in its native state and with multiple phosphorylations on the S285, S289, and S293 residues, with four different standard force field (FF)/water model combinations. We find that the different parameters used for the phosphate groups (which can be more or less flexible) in these FFs and the specific interactions between bulk cations and water lead to the formation of a specific type of counterion bridge, termed P-collab (for phosphate collaboration, with being an integer), where counterions form stable structures binding with two or three phosphate groups simultaneously. The resulting effect of P-collabs on the tau-R2 conformational space differs when using sodium or potassium cations and is likely to impact the peptide overall dynamics and how this MAP interacts with tubulins. We also investigated the effect of phosphoresidue spacing and ionic concentration by modeling polyalanine peptides containing two phosphoserines located one-six residues apart. Three new metrics specifically tailored for IDPs (proteic Menger curvature, local curvature, and local flexibility) were introduced, which allow us to fully characterize the impact of P-collabs on the dynamics of disordered peptides at the residue level.

摘要

tau 是一种固有无序(IDP)微管相关蛋白(MAP),在微管组装和组织中起着关键作用。tau 的功能可以通过多个磷酸化位点进行调节。这些翻译后修饰已知会降低 tau 与微管的结合亲和力,并且异常的 tau 磷酸化模式与阿尔茨海默病有关。使用全原子分子动力学模拟,我们比较了 tau R2 重复结构域(包含强微管结合位点)在其天然状态和 S285、S289 和 S293 残基上的多个磷酸化状态下的构象景观,与四个不同的标准力场(FF)/水模型组合。我们发现,这些 FF 中用于磷酸基团的不同参数(可以或多或少地灵活)以及大离子与水之间的特定相互作用导致形成了一种特定类型的反离子桥,称为 P-collab(代表磷酸协同作用,其中 是整数),其中反离子形成稳定的结构,同时与两个或三个磷酸基团结合。当使用钠离子或钾离子时,P-collab 对 tau-R2 构象空间的影响不同,这可能会影响肽的整体动力学以及这种 MAP 如何与微管相互作用。我们还通过模拟含有相隔一到六个残基的两个磷酸丝氨酸的丙氨酸肽,研究了磷酸残基间距和离子浓度的影响。引入了三个专门针对 IDP 的新指标(蛋白质 Menger 曲率、局部曲率和局部灵活性),这使我们能够在残基水平上充分表征 P-collab 对无序肽动力学的影响。

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