Copper(II) inhibits in vitro conversion of prion protein into amyloid fibrils

Olga V Bocharova1, Leonid Breydo, Vadim V Salnikov

  • 1Medical Biotechnology Center, University of Maryland Biotechnology Institute, Baltimore, Maryland 21201, USA.

Biochemistry
|May 4, 2005
PubMed

Insights

Copper(II) ions influence prion protein conversion and amyloid formation. While Cu(2+) can inhibit prion replication, it also stabilizes disease-specific isoforms, complicating its role in prion disease progression.

Area of Science:

  • Biochemistry
  • Neuroscience
  • Prion Biology

Background:

  • In vitro-generated prion protein (PrP) amyloid fibrils show low infectivity.
  • Optimizing cell-free prion conversion is crucial for generating high infectivity.
  • Copper(II) is implicated in both normal and pathological PrP functions.

Purpose of the Study:

  • To investigate the effect of Cu(2+) on cell-free conversion of recombinant PrP.
  • To understand copper's role in prion pathogenesis.

Main Methods:

  • Studied cell-free conversion of full-length recombinant PrP (rPrP 23-230) and rPrP 89-230.
  • Assessed the impact of Cu(2+), Zn(2+), and Mn(2+) at different pH levels.
  • Analyzed the effect of Cu(2+) on preformed amyloid fibrils and proteinase K (PK)-resistance.

Main Results:

  • Cu(2+) inhibited rPrP 23-230 amyloid formation at pH 7.2, an effect less pronounced at pH 6.0.
  • Inhibition by Cu(2+) occurred even without the octarepeat region but was less effective.
  • Cu(2+) stabilized a nonamyloidogenic, PK-resistant alpha-rPrP form.
  • Cu(2+) induced coiling and enhanced PK-resistance of preformed fibrils, promoting aggregation.

Conclusions:

  • Cu(2+) has a complex role in prion disease pathogenesis.
  • Copper may inhibit prion replication but also stabilize disease-associated PrP isoforms.
  • The net effect of copper on prion disease progression is not straightforward.