Tsukuba, Japan—In neurodegenerative diseases such as Alzheimer's disease, progressive neuronal damage is associated with the accumulation of abnormal tau filaments in the brain. The core of these tau filaments forms a highly ordered structure, while molecules such as ubiquitin are attached to tau around the core as post-translational modifications. However, the specific role that these peripheral modifications play in maintaining the structural stability of tau filaments remains unclear.
In this study, the researchers extracted tau filaments from the brain tissue of patients with Alzheimer's disease and vacuolar tauopathy, a rare inherited neurodegenerative disease. They examined the biological and structural properties of these filaments through mouse inoculation experiments and cryo-electron microscopy analyses. Tau filaments obtained from the two diseases produced distinct patterns of tau pathology in the mouse brain. Cryo-electron microscopy further revealed that tau filament structures varied markedly between Alzheimer's disease and vacuolar tauopathy, with five distinct filament types identified in the latter. Furthermore, shifting the position of polyubiquitin altered the interface between the two protofilaments in some tau filaments, leading to the emergence of previously unobserved filament structures.
These results indicate that a tau filament structure may be influenced not only by the highly ordered filament core but also by post-translational modifications surrounding the core. The findings provide new insights into the mechanisms governing the formation and stabilization of disease-specific tau filament structures and may enhance our understanding of the structural diversity observed among tau-related neurodegenerative diseases.
This study was also featured in Alzforum Research News: "Polyubiquitin May Dictate the Structure of Tau Fibrils" ( https://www.alzforum.org/news/research-news/polyubiquitin-may-dictate-structure-tau-fibrils )