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Physical studies of conformational plasticity in a recombinant prion protein
H Zhang1, J Stockel, I Mehlhorn
1Department of Neurology, University of California, San Francisco 94143, USA.
Abstract:
PrP(Sc) is known to be the major, if not the only, component of the infectious prion. Limited proteolysis of PrP(Sc) produces an N-terminally truncated polypeptide of about 142 residues, designated PrP 27-30. Recently, a recombinant protein (rPrP) of 142 residues corresponding to the Syrian hamster PrP 27-30 was expressed in Escherichia coli and purified (Mehlhorn et al., 1996). rPrP has been refolded into both alpha-helical and beta-sheet structures as well as various intermediates in aqueous buffers. The beta-sheet state and two pH-dependent alpha-helical states were characterized by CD and NMR. The alpha-helical conformation occurred only after the formation of an intramolecular disulfide bond, whereas the beta-sheet form was accessible either with or without the disulfide. Of the different alpha-helical forms studied, only those refolded in the pH range 5-8 were substantially soluble at physiological pH, exhibiting similar conformations and monomeric analytical sedimentation profiles throughout the above pH range. Furthermore, refolded alpha-rPrP showed NMR chemical shift dispersion typical of proteins with native conformations, although 2D NMR indicated large segments of conformational flexibility. It displayed a cooperative thermal denaturation transition; at elevated temperatures, it converted rapidly and irreversibly to the thermodynamically more stable beta-sheet form. Unfolding of alpha-rPrP by GdnHCl revealed a two-phase transition with a relatively stable folding intermediate at 2 M GdnHCl. The deltaG values were estimated to be 1.9 +/- 0.4 kcal/mol for the first phase and 6.5 +/- 1.2 kcal/mol for the second, consistent with a folding core surrounded by significant segments of flexible conformation. By NMR, alpha-rPrP(acid) isolated at pH 2 without refolding exhibited heterogeneous line widths, consistent with an acid-denatured molten globular state. We conclude that to the extent that rPrP constitutes a relevant folding domain of PrP(C), the various conformations exhibited by rPrP suggest that the PrP sequence may be intrinsically plastic in its conformations; indeed, portions of PrP(C) may possess a relatively open conformation which makes it susceptible to conversion into PrP(Sc) under appropriate conditions.
Insights
Recombinant prion protein (rPrP) refolded into alpha-helical and beta-sheet structures reveals intrinsic conformational plasticity. This suggests that the prion protein
Area of Science:
- Biochemistry
- Structural Biology
- Neuroscience
Background:
- Prion diseases are linked to the misfolding of the prion protein (PrP).
- The infectious form, PrP(Sc), is derived from a normal cellular form, PrP(C).
- Limited proteolysis yields PrP 27-30, a key fragment for structural studies.
Purpose of the Study:
- To investigate the conformational properties of recombinant PrP 27-30 (rPrP).
- To explore the refolding pathways and stability of different rPrP conformations.
- To understand the intrinsic flexibility of the PrP sequence and its implications for prion formation.
Main Methods:
- Expression and purification of recombinant Syrian hamster PrP 27-30 (rPrP) in E. coli.
- Circular dichroism (CD) and Nuclear Magnetic Resonance (NMR) spectroscopy for structural characterization.
- Refolding experiments in aqueous buffers across various pH conditions.
- Thermal denaturation and GuHCl-induced unfolding studies.
Main Results:
- rPrP refolded into distinct alpha-helical and beta-sheet structures.
- Alpha-helical conformations required an intramolecular disulfide bond and were pH-dependent (5-8 for solubility).
- NMR indicated native-like conformations with significant flexibility in alpha-helical states.
- Beta-sheet form was thermodynamically more stable and accessible.
- Unfolding studies revealed a folding core and flexible segments.
Conclusions:
- The PrP sequence exhibits intrinsic conformational plasticity.
- Soluble alpha-helical rPrP conformations resemble native states but possess flexibility.
- The inherent flexibility of PrP(C) may predispose it to conversion into the infectious PrP(Sc) form.