4.8 Article

Hydration water mobility is enhanced around tau amyloid fibers

出版社

NATL ACAD SCIENCES
DOI: 10.1073/pnas.1422824112

关键词

hydration water; tau protein; amyloid fibers; intrinsically disordered proteins; neutron scattering

资金

  1. French Infrastructure for Integrated Structural Biology (FRISBI) [ANR-10-INSB-05-02]
  2. Grenoble Alliance for Integrated Structural Cell Biology (GRAL) within PSB [ANR-10-LABX-49-01]
  3. CEA
  4. CNRS
  5. UJF
  6. Agence Nationale de la Recherche [ANR-11-BSV5-027]
  7. European Union [HPRI-2001-50065, RII3-CT-2003-505925]
  8. UK Engineering and Physical Sciences Research Council (EPSRC)-funded activity within the Institut Laue Langevin EMBL DLAB [GR/R99393/01, EP/C015452/1]
  9. European Commission under the 7th Framework Programme through the Key Action: Strengthening the European Research Area, Research Infrastructures [226507 (NMI3)]
  10. Engineering and Physical Sciences Research Council [GR/R99393/01, EP/C015452/1] Funding Source: researchfish
  11. EPSRC [EP/C015452/1] Funding Source: UKRI

向作者/读者索取更多资源

The paired helical filaments (PHF) formed by the intrinsically disordered human protein tau are one of the pathological hallmarks of Alzheimer disease. PHF are fibers of amyloid nature that are composed of a rigid core and an unstructured fuzzy coat. The mechanisms of fiber formation, in particular the role that hydration water might play, remain poorly understood. We combined protein deuteration, neutron scattering, and all-atom molecular dynamics simulations to study the dynamics of hydration water at the surface of fibers formed by the full-length human protein htau40. In comparison with monomeric tau, hydration water on the surface of tau fibers is more mobile, as evidenced by an increased fraction of translationally diffusing water molecules, a higher diffusion coefficient, and increased mean-squared displacements in neutron scattering experiments. Fibers formed by the hexapeptide (306)VQIVYK(311) were taken as a model for the tau fiber core and studied by molecular dynamics simulations, revealing that hydration water dynamics around the core domain is significantly reduced after fiber formation. Thus, an increase in water dynamics around the fuzzy coat is proposed to be at the origin of the experimentally observed increase in hydration water dynamics around the entire tau fiber. The observed increase in hydration water dynamics is suggested to promote fiber formation through entropic effects. Detection of the enhanced hydration water mobility around tau fibers is conjectured to potentially contribute to the early diagnosis of Alzheimer patients by diffusion MRI.

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