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Protein Misfolding Cyclic Amplification of Prions
Published on: November 7, 2012
De Novo Generation of a Unique Cervid Prion Strain Using Protein Misfolding Cyclic Amplification
Crystal Meyerett-Reid1, A Christy Wyckoff1, Terry Spraker1
1Prion Research Center at Colorado State University, Department of Microbiology, Immunology and Pathology, College of Veterinary Medicine and Biomedical Sciences, Fort Collins, Colorado, USA.
Abstract:
Substantial evidence supports the hypothesis that prions are misfolded, infectious, insoluble, and protease-resistant proteins (PrPRES) devoid of instructional nucleic acid that cause transmissible spongiform encephalopathies (TSEs). Protein misfolding cyclic amplification (PMCA) has provided additional evidence that PrPRes acts as a template that can convert the normal cellular prion protein (PrPC) present in uninfected normal brain homogenate (NBH) into the infectious misfolded PrPRES isoform. Human PrPC has been shown to spontaneously convert to a misfolded pathological state causing sporadic Creutzfeldt-Jakob disease (sCJD). Several investigators have reported spontaneous generation of prions by in vitro assays, including PMCA. Here we tested the rate of de novo generation of cervid prions in our laboratory using our standard PMCA protocol and NBH from transgenic mice expressing cervid PrPC (TgCerPrP mice). We generated de novo prions in rounds 4, 5, and 7 at low cumulative rates of 1.6, 5.0, and 6.7%, respectively. The prions caused infectious chronic wasting disease (CWD) upon inoculation into normal uninfected TgCerPrP mice and displayed unique biochemical characteristics compared to other cervid prion strains. We conclude that PMCA of cervid PrPC from normal brain homogenate spontaneously generated a new cervid prion strain. These data support the potential for cervids to develop sporadic CWD. IMPORTANCE CWD is the only known TSE that affects free-ranging wildlife, specifically cervids such as elk, deer, moose, caribou, and reindeer. CWD has become endemic in both free-ranging and captive herds in North America, South Korea, and, most recently, northern Europe. The prion research community continues to debate the origins of CWD. Original foci of CWD emergence in Colorado and Wyoming coincident with the sheep TSE scrapie suggest that scrapie prions may have adapted to cervids to cause CWD. However, emerging evidence supports the idea that cervid PrPC may be more prone to misfolding to the pathological isoform. Here we test the hypothesis that cervid PrPC can spontaneously misfold to create de novo prions. Whether CWD can arise spontaneously as a sporadic TSE or represents a new TSE caused by cervid-adapted scrapie prions profoundly impacts surveillance and mitigation strategies. Podcast: A podcast concerning this article is available.
Insights
This study shows that prions can spontaneously generate new strains in cervids (deer, elk) through protein misfolding cyclic amplification (PMCA). This finding suggests a potential for sporadic Chronic Wasting Disease (CWD) in wildlife.
Area of Science:
- Prion biology and neurodegenerative diseases.
- Wildlife transmissible spongiform encephalopathies (TSEs).
Background:
- Prions are infectious proteins (PrPRES) causing TSEs like Chronic Wasting Disease (CWD).
- Protein misfolding cyclic amplification (PMCA) can convert normal cellular prion protein (PrPC) into infectious PrPRES.
- The origin of CWD, particularly the possibility of spontaneous prion generation, remains debated.
Purpose of the Study:
- To investigate the rate of spontaneous, de novo prion generation in cervids using PMCA.
- To determine if spontaneously generated cervid prions can cause infectious Chronic Wasting Disease (CWD).
- To characterize the biochemical properties of newly generated cervid prion strains.
Main Methods:
- Utilized standard Protein Misfolding Cyclic Amplification (PMCA) protocol.
- Employed normal brain homogenate (NBH) from transgenic mice expressing cervid PrPC (TgCerPrP mice).
- Inoculated generated prions into normal uninfected TgCerPrP mice to assess infectivity and disease causation.
Main Results:
- Successfully generated de novo cervid prions at cumulative rates of 1.6%, 5.0%, and 6.7% across different rounds.
- Inoculation of these prions into TgCerPrP mice resulted in infectious Chronic Wasting Disease (CWD).
- The newly generated prions exhibited unique biochemical characteristics distinct from known cervid prion strains.
Conclusions:
- Protein misfolding cyclic amplification (PMCA) of cervid PrPC spontaneously generated a novel cervid prion strain.
- These findings support the hypothesis that cervids can develop sporadic Chronic Wasting Disease (CWD).
- The potential for spontaneous CWD emergence has significant implications for wildlife surveillance and mitigation strategies.

