Beta amyloid oligomers and fibrils stimulate differential activation of primary microglia

Cindy M Sondag1, Gunjan Dhawan, Colin K Combs

  • 1Department of Pharmacology, University of North Dakota School of Medicine and Health Sciences, Grand Forks, ND 58203, USA. csondag@medicine.nodak.edu

Abstract

Insights

Beta amyloid (Abeta) oligomers, unlike fibrils, activate distinct microglial inflammatory pathways and harm neurons. These findings highlight Abeta conformations as potential therapeutic targets for Alzheimer's disease.

Area of Science:

  • Neuroscience
  • Immunology
  • Biochemistry

Background:

  • Alzheimer's disease (AD) is characterized by beta-amyloid (Abeta) plaques.
  • While aggregated Abeta fibrils are found in plaques, soluble Abeta oligomers may drive AD pathogenesis.
  • Oligomeric Abeta's role in neuronal dysfunction warrants further investigation.

Purpose of the Study:

  • To compare the effects of Abeta oligomers and fibrils on primary microglia and neurons.
  • To investigate the distinct signaling and secretory responses induced by different Abeta conformations.
  • To assess the impact of Abeta conformations on neuronal viability.

Main Methods:

  • Synthetic Abeta1-42 oligomers (dimer-trimer) and fibrils were prepared and characterized.
  • Primary murine microglia and cortical neuron cultures were stimulated with Abeta preparations.
  • Microglial activation, secretory profiles, and neuronal viability were analyzed.

Main Results:

  • Both Abeta oligomers and fibrils induced pro-inflammatory microglial activation.
  • Oligomers uniquely increased phosphorylated Lyn, Syk, and p38 MAP kinase levels.
  • Oligomers induced a distinct secretory profile of cytokines and chemokines compared to fibrils.
  • Soluble Abeta oligomers caused cortical neuron death, exacerbated by microglia.

Conclusions:

  • Abeta oligomers and fibrils elicit distinct microglial signaling and secretory responses.
  • These conformation-specific events influence neuronal survival.
  • Targeting specific Abeta conformations may offer novel anti-inflammatory therapeutic strategies for AD.