Viola Giovanna, Trivellato Daniele, Laitaoja Mikko, Jänis Janne, Felli Isabella C, D'Onofrio Mariapina, Mollica Luca, Giachin Gabriele, Assfalg Michael
Department of Biotechnology, University of Verona, Verona I-37134, Italy.
Department of Chemistry, University of Eastern Finland, Joensuu FI-80101, Finland.
Proc Natl Acad Sci U S A. 2025 Apr 15;122(15):e2425831122. doi: 10.1073/pnas.2425831122. Epub 2025 Apr 8.
Posttranslational modifications can critically affect conformational changes of amyloid-forming proteins. Ubiquitination of the microtubule-associated tau protein, an intrinsically disordered biomolecule, has been proposed to influence the formation of filamentous deposits in neurodegenerative conditions. Given the reported link between aggregation propensity and intrinsic structural preferences (e.g., transient extended structural motifs or tertiary contacts) in disordered proteins, we sought to explore the conformational landscape of ubiquitinated tau. Exploiting selective conjugation reactions, we produced single- and double-monoubiquitinated protein samples. Next, we examined the ubiquitinated species from different standpoints using NMR spectroscopy, small-angle X-ray scattering experiments, and native ion mobility-mass spectrometry (IM-MS). Moreover, we obtained atomistic representations of the conformational ensembles via scaled MD calculations, consistent with the experimental data. Modifying the repeat domain of tau with ubiquitin had a limited effect on secondary structure propensities and local mobility of distal regions. Instead, ubiquitination enhanced the compaction of the conformational ensemble, with the effect modulated by the site and the number of modifications. Native IM-MS patterns pinpointed similarities and differences between distinct tau proteoforms. It emerges that ubiquitination exerts a position-specific influence on the conformational distribution of tau molecules. This study reveals the unique conformational features of ubiquitinated forms of tau and points to their potential impact on aggregation and phase separation propensities, offering clues for a better understanding of disease-related structural alterations.
翻译后修饰可严重影响淀粉样蛋白形成蛋白的构象变化。微管相关的tau蛋白是一种内在无序的生物分子,其泛素化被认为会影响神经退行性疾病中丝状沉积物的形成。鉴于已报道的无序蛋白聚集倾向与内在结构偏好(例如,瞬时延伸结构基序或三级接触)之间的联系,我们试图探索泛素化tau的构象景观。利用选择性共轭反应,我们制备了单泛素化和双泛素化的蛋白质样品。接下来,我们使用核磁共振光谱、小角X射线散射实验和原生离子淌度-质谱(IM-MS)从不同角度检查泛素化物种。此外,我们通过缩放分子动力学计算获得了构象集合的原子模型,与实验数据一致。用泛素修饰tau的重复结构域对二级结构倾向和远端区域的局部流动性影响有限。相反,泛素化增强了构象集合的紧凑性,其效果受修饰位点和修饰数量的调节。原生IM-MS图谱指出了不同tau蛋白变体之间的异同。结果表明,泛素化对tau分子的构象分布具有位置特异性影响。这项研究揭示了泛素化tau形式的独特构象特征,并指出了它们对聚集和相分离倾向的潜在影响,为更好地理解疾病相关的结构改变提供了线索。