AI Article Synopsis

  • * Researchers synthesized a Tau segment with various PTMs and observed that these modifications generally hinder Tau's assembly into PHFs, with acetylation showing variable effects, and phosphorylation consistently reducing aggregation.
  • * The findings emphasize that PTMs located outside the rigid core of Tau filaments are crucial for initiating PHF formation, illustrating the complex role of these modifications in influencing Tau aggregation dynamics.

Article Abstract

The self-assembly of Tau into filaments, which mirror the structures observed in Alzheimer's disease (AD) brains, raises questions about the role of AD-specific post-translational modifications (PTMs) in the formation of paired helical filaments (PHFs). To investigate this, we developed a synthetic approach to produce Tau(291-391) featuring -acetyllysine, phosphoserine, phosphotyrosine, and -glycosylation at positions commonly modified in post-mortem AD brains. Using various electron and optical microscopy techniques, we discovered that these modifications generally hinder the assembly of Tau into PHFs. Interestingly, while acetylation's effect on Tau assembly displayed variability, either promoting or inhibiting phase transitions in cofactor-free aggregation, heparin-induced aggregation, and RNA-mediated liquid-liquid phase separation (LLPS), phosphorylation uniformly mitigated these processes. Our observations suggest that PTMs, particularly those situated outside the rigid core, are pivotal in the nucleation of PHFs. Moreover, with heparin-induced aggregation leading to the formation of heterogeneous aggregates, most AD-specific PTMs appeared to decelerate aggregation. The impact of acetylation on RNA-induced LLPS was notably site-dependent, whereas phosphorylation consistently reduced LLPS across all proteoforms examined. These insights underscore the complex interplay between site-specific PTMs and environmental factors in modulating Tau aggregation kinetics, highlighting the role of PTMs located outside the ordered filament core in driving the self-assembly.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11613296PMC
http://dx.doi.org/10.1021/acscentsci.4c01319DOI Listing

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