» Articles » PMID: 11389614

On the Mechanism of Alpha-helix to Beta-sheet Transition in the Recombinant Prion Protein

Overview
Journal Biochemistry
Specialty Biochemistry
Date 2001 Jun 8
PMID 11389614
Citations 45
Authors
Affiliations
Soon will be listed here.
Abstract

It is believed that the critical event in the pathogenesis of transmissible spongiform encephalopathies is the conversion of the prion protein from an alpha-helical form, PrP(C), to a beta-sheet-rich conformer, PrP(Sc). Recently, we have shown that incubation of the recombinant prion protein under mildly acidic conditions (pH 5 or below) in the presence of low concentrations of guanidine hydrochloride results in a transition to PrP(Sc)-like beta-sheet-rich oligomers that show fibrillar morphology and an increased resistance to proteinase K digestion [Swietnicki, W., Morillas, M, Chen, S., Gambetti, P., and Surewicz, W. K. (2000) Biochemistry 39, 424-431]. To gain insight into the mechanism of this transition, in the present study we have characterized the biophysical properties of the recombinant human prion protein (huPrP) at acidic pH in the presence of urea and salt. Urea alone induces unfolding of the protein but does not result in protein self-association or a conversion to beta-sheet structure. However, a time-dependent transition to beta-sheet structure occurs upon addition of both urea and NaCl to huPrP, even at a sodium chloride concentration as low as 50 mM. This transition occurs concomitantly with oligomerization of the protein. At a given protein and sodium chloride concentration, the rate of monomeric alpha-helix to oligomeric beta-sheet transition is strongly dependent on the concentration of urea. Low and medium concentrations of the denaturant accelerate the reaction, whereas strongly unfolding conditions are not conducive to the conversion of huPrP into an oligomeric beta-sheet-rich structure. The present data strongly suggest that partially unfolded intermediates may be involved in the transition of the monomeric recombinant prion protein into the oligomeric scrapie-like form.

Citing Articles

A portable elliptical dichroism spectrometer targeting secondary structural features of tumorous protein for pancreatic cancer detection.

Bauer A, Elamurugan S, Tolba S, Fatima , Nega E, Lima Jr I Biosens Bioelectron. 2022; 222:114934.

PMID: 36455371 PMC: 9792437. DOI: 10.1016/j.bios.2022.114934.


Melatonin: Regulation of Prion Protein Phase Separation in Cancer Multidrug Resistance.

Loh D, Reiter R Molecules. 2022; 27(3).

PMID: 35163973 PMC: 8839844. DOI: 10.3390/molecules27030705.


Structure of prion β-oligomers as determined by short-distance crosslinking constraint-guided discrete molecular dynamics simulations.

Serpa J, Popov K, Petrotchenko E, Dokholyan N, Borchers C Proteomics. 2021; 21(21-22):e2000298.

PMID: 34482645 PMC: 9285417. DOI: 10.1002/pmic.202000298.


Prediction of Transmembrane Regions, Cholesterol, and Ganglioside Binding Sites in Amyloid-Forming Proteins Indicate Potential for Amyloid Pore Formation.

Venko K, Novic M, Stoka V, Zerovnik E Front Mol Neurosci. 2021; 14:619496.

PMID: 33642992 PMC: 7902868. DOI: 10.3389/fnmol.2021.619496.


Nonlinear mechanics of lamin filaments and the meshwork topology build an emergent nuclear lamina.

Tanuj Sapra K, Qin Z, Dubrovsky-Gaupp A, Aebi U, Muller D, Buehler M Nat Commun. 2020; 11(1):6205.

PMID: 33277502 PMC: 7718915. DOI: 10.1038/s41467-020-20049-8.