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A multi-scale model explains oscillatory slowing and neuronal hyperactivity in Alzheimer’s disease

  • Christoffer G. Alexandersen
  • , Willem de Haan
  • , Christian Bick*
  • , Alain Goriely
  • *Corresponding author for this work

Research output: Contribution to JournalArticleAcademicpeer-review

Abstract

Alzheimer’s disease is the most common cause of dementia and is linked to the spreading of pathological amyloid-β and tau proteins throughout the brain. Recent studies have highlighted stark differences in how amyloid-β and tau affect neurons at the cellular scale. On a larger scale, Alzheimer’s patients are observed to undergo a period of early-stage neuronal hyperactivation followed by neurodegeneration and frequency slowing of neuronal oscillations. Herein, we model the spreading of both amyloid-β and tau across a human connectome and investigate how the neuronal dynamics are affected by disease progression. By including the effects of both amyloid-β and tau pathology, we find that our model explains AD-related frequency slowing, early-stage hyperactivation and late-stage hypoactivation. By testing different hypotheses, we show that hyperactivation and frequency slowing are not due to the topological interactions between different regions but are mostly the result of local neurotoxicity induced by amyloid-β and tau protein.

Original languageEnglish
Article number20220607
JournalJournal of the Royal Society Interface
Volume20
Issue number198
DOIs
Publication statusPublished - 4 Jan 2023

Bibliographical note

Publisher Copyright:
© 2023 The Authors.

Funding

FundersFunder number
Engineering and Physical Sciences Research Council of Great Britain
University of Oxford
Engineering and Physical Sciences Research CouncilEP/T013613/1, EP/R020205/1
NWO ZonMw Memorabel733050518

    Keywords

    • Alzheimer’s disease
    • brain dynamics
    • frequency slowing
    • network adaptation
    • neural oscillation
    • neurodegeneration

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