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Updated: Jul 16, 2025

Investigating the Spreading and Toxicity of Prion-like Proteins Using the Metazoan Model Organism C. elegans
Published on: January 8, 2015
Measuring prion propagation in single bacteria elucidates a mechanism of loss
Krista Jager1, Maria Teresa Orozco-Hidalgo1, Benjamin Lennart Springstein2
1Department of Biology, Concordia University, Montréal, QC H4B 1R6, Canada.
Abstract:
Prions are self-propagating protein aggregates formed by specific proteins that can adopt alternative folds. Prions were discovered as the cause of the fatal transmissible spongiform encephalopathies in mammals, but prions can also constitute nontoxic protein-based elements of inheritance in fungi and other species. Prion propagation has recently been shown to occur in bacteria for more than a hundred cell divisions, yet a fraction of cells in these lineages lost the prion through an unknown mechanism. Here, we investigate prion propagation in single bacterial cells as they divide using microfluidics and fluorescence microscopy. We show that the propagation occurs in two distinct modes. In a fraction of the population, cells had multiple small visible aggregates and lost the prion through random partitioning of aggregates to one of the two daughter cells at division. In the other subpopulation, cells had a stable large aggregate localized to the pole; upon division the mother cell retained this polar aggregate and a daughter cell was generated that contained small aggregates. Extending our findings to prion domains from two orthologous proteins, we observe similar propagation and loss properties. Our findings also provide support for the suggestion that bacterial prions can form more than one self-propagating state. We implement a stochastic version of the molecular model of prion propagation from yeast and mammals that recapitulates all the observed single-cell properties. This model highlights challenges for prion propagation that are unique to prokaryotes and illustrates the conservation of fundamental characteristics of prion propagation.
Insights
Bacterial prions propagate through two distinct modes within single cells. Some cells lose prions via random aggregate partitioning, while others maintain a stable polar aggregate, influencing inheritance.
Area of Science:
- Microbiology
- Molecular Biology
- Biophysics
Background:
- Prions are self-propagating protein aggregates with diverse roles, from disease in mammals to inheritance in fungi.
- Bacterial prion propagation has been observed, but the mechanisms of loss and inheritance at the single-cell level remain unclear.
Purpose of the Study:
- To investigate the mechanisms of prion propagation and loss in single bacterial cells during division.
- To characterize distinct modes of prion propagation in bacterial populations.
- To model bacterial prion dynamics and compare them with known prion systems.
Main Methods:
- Utilized microfluidics and fluorescence microscopy to track prion propagation in individual dividing bacterial cells.
- Analyzed prion aggregate behavior, including size, number, and localization within cells.
- Developed and implemented a stochastic molecular model of prion propagation.
Main Results:
- Identified two distinct prion propagation modes: random partitioning of small aggregates leading to loss, and stable polar aggregates in mother cells.
- Observed that bacterial prions can exist in multiple self-propagating states.
- The implemented stochastic model successfully recapitulated observed single-cell prion properties.
Conclusions:
- Bacterial prion propagation involves unique challenges and conserved characteristics compared to yeast and mammals.
- Understanding these mechanisms is crucial for comprehending prion inheritance and potential roles in prokaryotes.
- The study provides a foundation for further research into bacterial prion biology.
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