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Attachment of Pathogenic Prion Protein to Model Oxide Surfaces

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Date 2013 Apr 25
PMID 23611152
Citations 7
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Abstract

Prions are the infectious agents in the class of fatal neurodegenerative diseases known as transmissible spongiform encephalopathies, which affect humans, deer, sheep, and cattle. Prion diseases of deer and sheep can be transmitted via environmental routes, and soil is has been implicated in the transmission of these diseases. Interaction with soil particles is expected to govern the transport, bioavailability and persistence of prions in soil environments. A mechanistic understanding of prion interaction with soil components is critical for understanding the behavior of these proteins in the environment. Here, we report results of a study to investigate the interactions of prions with model oxide surfaces (Al2O3, SiO2) using quartz crystal microbalance with dissipation monitoring and optical waveguide light mode spectroscopy. The efficiency of prion attachment to Al2O3 and SiO2 depended strongly on pH and ionic strength in a manner consistent with electrostatic forces dominating interaction with these oxides. The presence of the N-terminal portion of the protein appeared to promote attachment to Al2O3 under globally electrostatically repulsive conditions. We evaluated the utility of recombinant prion protein as a surrogate for prions in attachment experiments and found that its behavior differed markedly from that of the infectious agent. Our findings suggest that prions would tend to associate with positively charged mineral surfaces in soils (e.g., iron and aluminum oxides).

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References
1.
Cronier S, Gros N, Tattum M, Jackson G, Clarke A, Collinge J . Detection and characterization of proteinase K-sensitive disease-related prion protein with thermolysin. Biochem J. 2008; 416(2):297-305. PMC: 2584334. DOI: 10.1042/BJ20081235. View

2.
Saunders S, Yuan Q, Bartz J, Bartelt-Hunt S . Effects of solution chemistry and aging time on prion protein adsorption and replication of soil-bound prions. PLoS One. 2011; 6(4):e18752. PMC: 3079715. DOI: 10.1371/journal.pone.0018752. View

3.
Prusiner S, McKinley M, Bowman K, Bolton D, Bendheim P, Groth D . Scrapie prions aggregate to form amyloid-like birefringent rods. Cell. 1983; 35(2 Pt 1):349-58. DOI: 10.1016/0092-8674(83)90168-x. View

4.
Sander M, Madliger M, Schwarzenbach R . Adsorption of transgenic insecticidal Cry1Ab protein to SiO2. 1. Forces driving adsorption. Environ Sci Technol. 2010; 44(23):8870-6. DOI: 10.1021/es103008s. View

5.
DeMarco M, Silveira J, Caughey B, Daggett V . Structural properties of prion protein protofibrils and fibrils: an experimental assessment of atomic models. Biochemistry. 2006; 45(51):15573-82. DOI: 10.1021/bi0612723. View