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Protein Misfolding Cyclic Amplification of Prions
Published on: November 7, 2012
Generalizing a mathematical model of prion aggregation allows strain coexistence and co-stability by including a
Paul Lemarre1, Laurent Pujo-Menjouet2,3, Suzanne S Sindi4
1School of Natural Sciences, University of California, Merced, 5200 North Lake Road, Merced, CA, 95343, USA.
Abstract:
Prions are proteins capable of adopting misfolded conformations and transmitting these conformations to other normally folded proteins. Prions are most commonly known for causing fatal neurodegenerative diseases in mammals but are also associated with several harmless phenotypes in yeast. A distinct feature of prion propagation is the existence of different phenotypical variants, called strains. It is widely accepted that these strains correspond to different conformational states of the protein, but the mechanisms driving their interactions remain poorly understood. This study uses mathematical modeling to provide insight into this problem. We show that the classical model of prion dynamics allows at most one conformational strain to stably propagate. In order to conform to biological observations of strain coexistence and co-stability, we develop an extension of the classical model by introducing a novel prion species consistent with biological studies. Qualitative analysis of this model reveals a new variety of behavior. Indeed, it allows for stable coexistence of different strains in a wide parameter range, and it also introduces intricate initial condition dependency. These new behaviors are consistent with experimental observations of prions in both mammals and yeast. As such, our model provides a valuable tool for investigating the underlying mechanisms of prion propagation and the link between prion strains and strain specific phenotypes. The consideration of a novel prion species brings a change in perspective on prion biology and we use our model to generate hypotheses about prion infectivity.
Insights
Mathematical modeling reveals how different prion strains coexist. A new model, incorporating a novel prion species, explains strain interactions and stability, offering insights into neurodegenerative diseases and yeast phenotypes.
Area of Science:
- Protein Misfolding and Neurodegeneration
- Biophysics and Mathematical Biology
Background:
- Prions are misfolded proteins causing fatal neurodegenerative diseases in mammals and harmless phenotypes in yeast.
- Prion strains, distinct phenotypical variants, are thought to arise from different protein conformations, but their interactions are poorly understood.
Purpose of the Study:
- To investigate the mechanisms governing prion strain interactions and coexistence using mathematical modeling.
- To develop an extended prion dynamics model that accounts for observed biological phenomena.
Main Methods:
- Utilized mathematical modeling to analyze prion propagation dynamics.
- Extended the classical prion model by introducing a novel prion species.
- Performed qualitative analysis of the extended model to explore new behaviors.
Main Results:
- The classical prion model permits only one stable conformational strain.
- The extended model demonstrates stable coexistence of multiple prion strains across a broad parameter range.
- The new model exhibits complex initial condition dependencies, aligning with experimental observations.
Conclusions:
- The developed mathematical model provides a framework for understanding prion strain interactions and stability.
- The model supports the coexistence of multiple prion strains, consistent with observations in mammals and yeast.
- This work offers a new perspective on prion biology, generating hypotheses about prion infectivity and strain-specific phenotypes.
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