Cell cycle related signaling in Neuro2a cells proceeds via the receptor for advanced glycation end products

A Schmidt1, B Kuhla, K Bigl

  • 1Department of Neuroanatomy, Paul Flechsig Institute of Brain Research, University of Leipzig, Leipzig, Germany.

Insights

In Alzheimer's disease (AD), S100B and advanced glycation end products (AGEs) may trigger neuronal cell cycle re-entry. This process involves the receptor for AGEs (RAGE) and p42/44 MAPK signaling, promoting cyclin D1 expression.

Area of Science:

  • Neuroscience
  • Cell Biology
  • Alzheimer's Disease Research

Background:

  • Differentiated neurons in Alzheimer's disease (AD) exhibit re-expression of cell cycle genes, linked to aberrant mitogenic signaling.
  • Amyloid plaques and activated glia in AD brains suggest plaque components or glial factors may induce neuronal mitogenic signaling.
  • S100B (from astrocytes) and advanced glycation end products (AGEs) are potential mitogens interacting with the receptor for AGEs (RAGE).

Purpose of the Study:

  • To investigate whether S100B and AGEs act as mitogenic stimuli for neurons.
  • To elucidate the signaling pathway involving RAGE, p42/44 MAPK, and cell cycle regulators in neurons.
  • To determine the role of RAGE in mediating S100B and AGE-induced neuronal cell cycle progression.

Main Methods:

  • Immunohistochemical staining to detect cyclin D1-positive neurons near AGE deposits in vivo.
  • Utilized Neuro2a cells overexpressing full-length RAGE (FL-RAGE) or a cytosolic deletion mutant (Delta-RAGE).
  • Assessed reactive oxygen species production, p42/44 MAPK activation, cyclin D1/cdk4 expression, cell cycle transition (S-phase entry), and p16 levels.

Main Results:

  • S100B and AGEs induced p42/44 MAPK activation, cyclin D1/cdk4 expression, and S-phase entry in FL-RAGE cells, but not in Delta-RAGE cells.
  • Signaling proceeded via RAGE and p42/44 MAPK, leading to increased cyclin D1/cdk4 and decreased p16 levels in FL-RAGE cells.
  • Inhibition of p42/44 MAPK (using UO126) blocked S100B and AGE-induced cyclin D1 expression and S-phase entry.

Conclusions:

  • S100B and AGEs can act as mitogenic stimuli for neurons, driving cell cycle progression.
  • The RAGE --> p42/44 MAPK --> cyclin D1/cdk4 signaling cascade mediates this mitogenic effect in neurons.
  • These findings highlight a potential mechanism contributing to neuronal cell cycle dysregulation in Alzheimer's disease.

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