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Alzheimer’s Disease: Models and Molecular Mechanisms Informing Disease and Treatments

  • Kaden L. Nystuen
  • , Shannon M. McNamee
  • , Monica Akula
  • , Kristina M. Holton
  • , Margaret M. DeAngelis
  • , Neena B. Haider
  • University of Massachusetts
  • Harvard University
  • The Broad Institute of MIT and Harvard

Research output: Contribution to journalReview articlepeer-review

17 Scopus citations

Abstract

Alzheimer’s Disease (AD) is a complex neurodegenerative disease resulting in progressive loss of memory, language and motor abilities caused by cortical and hippocampal degeneration. This review captures the landscape of understanding of AD pathology, diagnostics, and current therapies. Two major mechanisms direct AD pathology: (1) accumulation of amyloid β (Aβ) plaque and (2) tau-derived neurofibrillary tangles (NFT). The most common variants in the Aβ pathway in APP, PSEN1, and PSEN2 are largely responsible for early-onset AD (EOAD), while MAPT, APOE, TREM2 and ABCA7 have a modifying effect on late-onset AD (LOAD). More recent studies implicate chaperone proteins and Aβ degrading proteins in AD. Several tests, such as cognitive function, brain imaging, and cerebral spinal fluid (CSF) and blood tests, are used for AD diagnosis. Additionally, several biomarkers seem to have a unique AD specific combination of expression and could potentially be used in improved, less invasive diagnostics. In addition to genetic perturbations, environmental influences, such as altered gut microbiome signatures, affect AD. Effective AD treatments have been challenging to develop. Currently, there are several FDA approved drugs (cholinesterase inhibitors, Aß-targeting antibodies and an NMDA antagonist) that could mitigate AD rate of decline and symptoms of distress.

Original languageEnglish
Article number45
JournalBioengineering
Volume11
Issue number1
DOIs
StatePublished - Jan 2024

Keywords

  • Alzheimer’s Disease
  • Tau
  • amyloid β

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