Amino-terminally truncated prion protein PrP90-231 induces microglial activation in vitro

Stefano Thellung1, Alessandro Corsaro, Valentina Villa

  • 1Laboratory of Pharmacology, Department of Oncology, Biology and Genetics, University of Genova, V. le Benedetto XV, 2, 16132 Genova, Italy.

Insights

A recombinant prion protein fragment (PrP90-231) activates microglial cells, causing inflammation and neuronal damage in prion diseases. This study highlights a new target for therapeutic strategies against prion-induced brain inflammation.

Area of Science:

  • Neuroscience
  • Immunology
  • Biochemistry

Background:

  • Prion diseases involve the conversion of prion protein (PrP) to a protease-resistant form (PrP(Res)).
  • Microglia activation and cytokine release are early events in prion encephalopathies, contributing to neurodegeneration.
  • Previous studies showed PrP(Res) and synthetic fragments induce neuronal death via microglial activation.

Purpose of the Study:

  • To investigate the effect of a recombinant beta-structured PrP90-231 peptide on microglial cells.
  • To determine if PrP90-231 can elicit microglial activation and inflammatory responses in vitro.
  • To explore the role of extracellular signal-regulated kinases 1/2 (ERK1/2) in PrP90-231-induced microglial responses.

Main Methods:

  • Treatment of N9 microglial cells with recombinant PrP90-231 peptide.
  • Analysis of cell proliferation, cytokine secretion (RANTES, GCSF, IL-12), inducible nitric oxide synthase (i-NOS) expression, and nitric oxide release.
  • Assessment of ERK1/2 phosphorylation/activation and the effect of MEK inhibitor PD98059.

Main Results:

  • PrP90-231 induced N9 microglial cell proliferation arrest and increased secretion of RANTES, GCSF, and IL-12.
  • Treatment with PrP90-231 led to i-NOS expression, nitric oxide release, and delayed ERK1/2 activation.
  • Blocking ERK1/2 with PD98059 did not prevent PrP90-231-induced inhibition of microglial proliferation.

Conclusions:

  • Recombinant PrP90-231 peptide effectively activates microglial cells in vitro, mimicking aspects of prion disease pathogenesis.
  • PrP90-231-induced microglial activation involves cytokine release, i-NOS expression, and nitric oxide production.
  • This study provides a valuable in vitro model for developing therapeutic strategies targeting prion-induced neuroinflammation.

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