Passaging Human Tauopathy Patient Samples in Cells Generates Heterogeneous Fibrils with a Subpopulation Adopting Disease Folds.

Zhikai Zeng, Karen Tsay, Vishnu Vijayan, Matthew P Frost, Shikhar Prakash, Athena Quddus, Alexa Albert, Michael Vigers, Madhur Srivastava, Amanda L Woerman, Songi Han
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Abstract

The discovery by cryo-electron microscopy (cryo-EM) that the neu-ropathological hallmarks of different tauopathies, including Alzheimer's disease, corticobasal degeneration (CBD), and progressive supranuclear palsy (PSP), are caused by unique misfolded conformations of the protein tau is among the most profound developments in neurodegenerative disease research. To capitalize on these discoveries for therapeutic development, one must achieve in vitro replication of tau fibrils that adopt the representative tauopathy disease folds, which represents a grand challenge for the field. A widely used approach has been seeded propagation using pathological tau fibrils derived from post-mortem patient samples in biosensor cells that expresses a fragment of the tau protein known as K18, or Tau4RD, containing the microtubule-binding repeat domain of tau as the substrate. The new insights from cryo-EM raised the question of whether the Tau4RD fragment is capable of adopting characteristic tau folds found in CBD and PSP patient fibrils, and whether cell-passaged and amplified tau fibrils can be used as seeds to achieve cell-free assembly of recombinant 4R tau into fibrils without the addition of cofactors. Using Double Electron Electron Resonance (DEER) spectroscopy, we discovered that cell-passaged pathological seeds generate heterogeneous fibrils that are, however, distinct between the CBD and PSP lysate-seeded fibrils, and vastly different from heparin-induced tau fibril structures. Moreover, the lysate-seeded fibrils contain a characteristic sub-population that resembles the disease fold corresponding to the respective starting patient sample. These findings indicate that templated propagation using CBD and PSP patient-derived fibrils is possible with a tau fragment that does not contain the entire pathological fibril core, but also that additional mechanisms must be tuned to converge on a homogeneous fibril population.

在细胞中传代人类牛头病患者样本产生异质原纤维,亚群采用疾病折叠。
通过冷冻电子显微镜(cryo-EM)发现,包括阿尔茨海默病、皮质基底变性(CBD)和进行性核上性麻痹(PSP)在内的不同tau病的神经病理学特征是由tau蛋白独特的错误折叠构象引起的,这是神经退行性疾病研究中最深刻的进展之一。为了利用这些发现进行治疗开发,必须实现采用具有代表性的tau病褶皱的tau原纤维的体外复制,这对该领域来说是一个巨大的挑战。一种广泛使用的方法是在生物传感器细胞中使用来自死后患者样本的病理tau原纤维进行种子繁殖,该方法表达tau蛋白的片段K18或Tau4RD,其中包含tau的微管结合重复结构域作为底物。冷冻电镜的新见解提出了一个问题,即Tau4RD片段是否能够采用CBD和PSP患者原纤维中发现的特征性tau折叠,以及细胞传代和扩增的tau原纤维是否可以作为种子,在不添加辅助因子的情况下实现重组4R tau的无细胞组装到原纤维中。使用双电子电子共振(DEER)光谱,我们发现细胞传代的病理种子产生异质原纤维,然而,不同于CBD和PSP裂解物种子的原纤维,与肝素诱导的tau原纤维结构有很大不同。此外,裂解物种子原纤维含有一个特征亚群,类似于相应的起始患者样本的疾病折叠。这些发现表明,使用CBD和PSP患者来源的原纤维模板化繁殖是可能的,而tau片段不包含整个病理原纤维核心,但也必须调整其他机制以汇聚在均匀的原纤维群体上。
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