Amyloid β-Induced Redistribution of Transcriptional Factor EB and Lysosomal Dysfunction in Primary Microglial Cells

Xingzhi Guo1, Peng Tang1, Li Chen1

  • 1Department of Neurology, Shaanxi Provincial People's Hospital, and the Third Affiliated Hospital, Xi'an Jiaotong University School of MedicineXi'an, China.

Insights

Amyloid beta (Aβ) impairs microglial function in Alzheimer's disease by inhibiting nuclear TFEB translocation, leading to lysosomal dysfunction and reduced Aβ clearance. This study reveals a novel mechanism of microglial impairment.

Area of Science:

  • Neuroscience
  • Cell Biology
  • Pathology

Background:

  • Impaired amyloid-beta (Aβ) clearance by microglia is linked to Alzheimer's disease pathology.
  • Microglial dysfunction, particularly lysosomal impairment, may hinder Aβ degradation.
  • The precise mechanisms of Aβ-induced microglial impairment are not fully understood.

Purpose of the Study:

  • To investigate the effects of Aβ on microglial lysosomal function.
  • To examine the impact of Aβ on the nuclear translocation of transcription factor EB (TFEB).
  • To assess the expression of osteoporosis-associated transmembrane protein 1 (OSTM1) in Aβ-treated microglia.

Main Methods:

  • Primary microglial cells were treated with Aβ peptides (Aβ1-42 and Aβ42-1).
  • Western blot and confocal microscopy were used to analyze TFEB localization and OSTM1 expression.
  • Tumor necrosis factor-alpha release and intracellular pH were measured.

Main Results:

  • Aβ1-42, but not Aβ42-1, induced significant TNF-α release.
  • Aβ reduced nuclear TFEB levels in a dose-dependent manner, with increased TFEB in the plasma.
  • OSTM1 expression decreased, and lysosomal acidification was impaired in Aβ-treated microglia.

Conclusions:

  • Aβ peptides impair microglial function by inhibiting TFEB nuclear translocation.
  • This inhibition leads to lysosomal dysfunction, characterized by reduced OSTM1 expression and impaired acidification.
  • These findings suggest a novel mechanism contributing to Alzheimer's disease pathogenesis via microglial impairment.