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Probing the conformation of the prion protein within a single amyloid fibril using a novel immunoconformational assay
Vera Novitskaya1, Natallia Makarava, Anne Bellon
1Medical Biotechnology Center, University of Maryland Biotechnology Institute, Baltimore, Maryland 21201, USA.
Abstract:
The coexistence of multiple strains or subtypes of the disease-related isoform of prion protein (PrP) in natural isolates, together with the observed conformational heterogeneity of PrP amyloid fibrils generated in vitro, indicates the importance of probing the conformation of single particles within heterogeneous samples. Using an array of PrP-specific antibodies, we report the development of a novel immunoconformational assay. Uniquely, application of this new technology allows the conformation of multimeric PrP within a single fibril or particle to be probed without pretreatment of the sample with proteinase K. Using amyloid fibrils prepared from full-length recombinant PrP, we demonstrated the utility of this assay to define (i) PrP regions that are surface-exposed or buried, (ii) the susceptibility of defined PrP regions to GdnHCl-induced denaturation, and (iii) the conformational heterogeneity of PrP fibrils as measured for either the entire fibrillar population or for individual fibrils. Specifically, PrP regions 159-174 and 224-230 were shown to be buried and were the most resistant to denaturation. The 132-156 segment of PrP was found to be cryptic under native conditions and solvent-exposed under partially denaturing conditions, whereas the region 95-105 was solvent-accessible regardless of the solvent conditions. Remarkably, a subfraction of fibrils showed immunoreactivity to PrPSc-specific antibodies designated as IgGs 89-112 and 136-158. The immunoreactivity of the conformational epitopes was reduced upon exposure to partially denaturing conditions. Unexpectedly, PrPSc -specific antibodies revealed conformational polymorphisms even within individual fibrils. Our studies provide valuable new insight into fibrillar substructure and offer a new tool for probing the conformation of single PrP fibrils.
Insights
This study introduces a new immunoconformational assay to analyze single prion protein (PrP) fibrils. The assay reveals detailed structural information and conformational heterogeneity within individual fibrils, including PrPSc-like structures.
Area of Science:
- Biochemistry
- Structural Biology
- Neuroscience
Background:
- Prion diseases are linked to misfolded prion protein (PrP) isoforms.
- PrP amyloid fibrils exhibit conformational heterogeneity, complicating analysis.
- Understanding single-particle conformation is crucial for disease research.
Purpose of the Study:
- To develop a novel immunoconformational assay for probing single prion protein (PrP) fibril conformations.
- To characterize the structural and conformational properties of PrP fibrils without proteinase K pretreatment.
- To investigate conformational heterogeneity and identify specific PrP regions within individual fibrils.
Main Methods:
- Development of a novel immunoconformational assay using PrP-specific antibodies.
- Application of the assay to amyloid fibrils from full-length recombinant PrP.
- Analysis of PrP regions' exposure, denaturation susceptibility, and conformational heterogeneity.
- Utilizing PrPSc-specific antibodies to probe for disease-associated conformations.
Main Results:
- The assay successfully probed PrP conformation within single fibrils without proteinase K.
- Identified buried (159-174, 224-230) and cryptic (132-156) PrP regions, with differential denaturation susceptibility.
- Region 95-105 was consistently solvent-accessible.
- A subfraction of fibrils showed immunoreactivity to PrPSc-specific antibodies, revealing conformational polymorphisms within individual fibrils.
Conclusions:
- The novel immunoconformational assay provides a powerful tool for analyzing single PrP fibrils.
- Detailed insights into PrP fibril substructure and conformational heterogeneity were obtained.
- The findings contribute to understanding prion protein structure and disease mechanisms.
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