Related Experiment Videos
Prions on the run: How extracellular vesicles serve as delivery vehicles for self-templating protein aggregates
Shu Liu1, André Hossinger1, Sarah Göbbels1
1a German Center for Neurodegenerative Diseases (DZNE e.V.) , Bonn , Germany.
Abstract:
Extracellular vesicles (EVs) are actively secreted, membrane-bound communication vehicles that exchange biomolecules between cells. EVs also serve as dissemination vehicles for pathogens, including prions, proteinaceous infectious agents that cause transmissible spongiform encephalopathies (TSEs) in mammals. Increasing evidence accumulates that diverse protein aggregates associated with common neurodegenerative diseases are packaged into EVs as well. Vesicle-mediated intercellular transmission of protein aggregates can induce aggregation of homotypic proteins in acceptor cells and might thereby contribute to disease progression. Our knowledge of how protein aggregates are sorted into EVs and how these vesicles adhere to and fuse with target cells is limited. Here we review how TSE prions exploit EVs for intercellular transmission and compare this to the transmission behavior of self-templating cytosolic protein aggregates derived from the yeast prion domain Sup 35 NM. Artificial NM prions are non-toxic to mammalian cell cultures and do not cause loss-of-function phenotypes. Importantly, NM particles are also secreted in association with exosomes that horizontally transmit the prion phenotype to naive bystander cells, a process that can be monitored with high accuracy by automated high throughput confocal microscopy. The high abundance of mammalian proteins with amino acid stretches compositionally similar to yeast prion domains makes the NM cell model an attractive model to study self-templating and dissemination properties of proteins with prion-like domains in the mammalian context.
Insights
Extracellular vesicles (EVs) transmit prions and protein aggregates between cells. Yeast prion models reveal how these vesicles spread neurodegenerative disease phenomena.
Area of Science:
- Cell Biology
- Neuroscience
- Biochemistry
Background:
- Extracellular vesicles (EVs) mediate intercellular communication by exchanging biomolecules.
- EVs are implicated in the spread of pathogens like prions and protein aggregates in neurodegenerative diseases.
- Mechanisms of protein aggregate sorting into EVs and their cellular uptake are not fully understood.
Purpose of the Study:
- To review the role of EVs in the intercellular transmission of prions.
- To compare prion transmission via EVs with yeast prion protein models.
- To explore the utility of yeast prion models for studying mammalian protein aggregation.
Main Methods:
- Review of existing literature on EV-mediated prion and protein aggregate transmission.
- Comparison of prion transmission pathways in mammals and yeast.
- Utilizing yeast prion protein Sup 35 NM as a model system.
- High-throughput confocal microscopy for monitoring prion transmission.
Main Results:
- TSE prions utilize EVs for intercellular transmission.
- Artificial yeast prions (NM) are secreted via exosomes and transmit phenotypes to recipient cells.
- NM prions are non-toxic and do not cause cellular dysfunction in mammalian models.
- Yeast prion models offer a tractable system to study prion-like protein behavior.
Conclusions:
- EVs are critical vehicles for the spread of prions and potentially other protein aggregates.
- Yeast prion models, like NM, can effectively mimic and help elucidate the mechanisms of prion-like protein transmission in mammalian systems.
- Further research using these models can advance understanding of neurodegenerative disease progression.