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Primary Microglia Isolation from Mixed Glial Cell Cultures of Neonatal Rat Brain Tissue
Published on: August 15, 2012
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.
Abstract:
The conversion of the prion protein (PrP) into a protease-resistant isoform (PrP(Res)) is considered the pathogenic event responsible for prion encephalopathies. Microglia activation accompanies PrP(Res) deposition representing an early event in the progression of these diseases. It is now believed that microglial cells play a worsening, if not causative, role in prion-induced neuronal death, through the release of proinflammatory and neurotoxic molecules. Indeed, in vitro observations have demonstrated that PrP(Res) and the synthetic prion fragment PrP106-126 induce neuronal death by activating microglial to migrate in the lesion area and secrete cytokines. Recently, we and others have demonstrated that the recombinant peptide, corresponding to the protease-resistant portion of PrP encompassing the amino acids 90-231 (PrP90-231), when beta-structured, is toxic for neuronal cells, in vitro. Here we report that PrP90-231 induces activation of N9 microglial cells, characterized by cell proliferation arrest and increased secretion of different cytokines (RANTES, GCSF, and IL-12). Moreover, the treatment of N9 cells with PrP90-231 elicited inducible nitric oxide synthase (i-NOS) expression, nitric oxide release, and a delayed (15 min to 1 h of treatment) extracellular signal-regulated kinases 1/2 (ERK1/2) phosphorylation/activation. Although ERK1/2 is known to regulate proliferative and differentiative events, we show that its blockade, using the specific MEK inhibitor PD98059, did not prevent PrP90-231-induced inhibition of N9 cell proliferation. To our knowledge, this is the first evidence that a recombinant PrP(Res)-like peptide elicits microglial activation in vitro, thus representing a potentially important tool to develop possible therapeutic strategies to target prion-induced brain inflammation.
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.

