Related Experiment Video
Updated: Jun 24, 2026

Protein Misfolding Cyclic Amplification of Prions
Published on: November 7, 2012
Paracrine diffusion of PrP(C) and propagation of prion infectivity by plasma membrane-derived microvesicles
Vincenzo Mattei1, Maria Grazia Barenco, Vincenzo Tasciotti
1Dipartimento di Medicina Sperimentale, Sapienza University, Rome, Italy.
Abstract:
Cellular prion protein (PrP(C)) is a physiological constituent of eukaryotic cells. The cellular pathways underlying prions spread from the sites of prions infection/peripheral replication to the central nervous system are still not elucidated. Membrane-derived microvesicles (MVs) are submicron (0.1-1 microm) particles, that are released by cells during plasma membrane shedding processes. They are usually liberated from different cell types, mainly upon activation as well as apoptosis, in this case, one of their hallmarks is the exposure of phosphatidylserine in the outer leaflet of the membrane. MVs are also characterized by the presence of adhesion molecules, MHC I molecules, as well as of membrane antigens typical of their cell of origin. Evidence exists that MVs shedding provide vehicles to transfer molecules among cells, and that MVs are important modulators of cell-to-cell communication. In this study we therefore analyzed the potential role of membrane-derived MVs in the mechanism(s) of PrP(C) diffusion and prion infectivity transmission. We first identified PrP(C) in association with the lipid raft components Fyn, flotillin-2, GM1 and GM3 in MVs from plasma of healthy human donors. Similar findings were found in MVs from cell culture supernatants of murine neuronal cells. Furthermore we demonstrated that PrP(Sc) is released from infected murine neuronal cells in association with plasma membrane-derived MVs and that PrP(Sc)-bearing MVs are infectious both in vitro and in vivo. The data suggest that MVs may contribute both to the intercellular mechanism(s) of PrP(C) diffusion and signaling as well as to the process of prion spread and neuroinvasion.
Insights
Membrane-derived microvesicles (MVs) carry cellular prion protein (PrP(C)) and infectious prions (PrP(Sc)). These MVs facilitate prion spread and neuroinvasion, highlighting their role in prion disease transmission.
Area of Science:
- Neuroscience
- Cell Biology
- Biochemistry
Background:
- Cellular prion protein (PrP(C)) is essential in eukaryotic cells, but pathways for prion spread to the central nervous system remain unclear.
- Membrane-derived microvesicles (MVs) are released by cells and mediate intercellular communication by transferring molecules.
- Prion diseases involve the misfolding and aggregation of PrP(Sc), leading to neurodegeneration.
Purpose of the Study:
- To investigate the role of membrane-derived microvesicles (MVs) in the diffusion of cellular prion protein (PrP(C)) and the transmission of prion infectivity.
- To determine if MVs are involved in the spread of prions from peripheral sites to the central nervous system.
Main Methods:
- PrP(C) and associated lipid raft components (Fyn, flotillin-2, GM1, GM3) were identified in MVs from human plasma and murine neuronal cell cultures.
- PrP(Sc) presence and infectivity were analyzed in MVs released from infected murine neuronal cells.
- In vitro and in vivo infectivity assays were performed on PrP(Sc)-bearing MVs.
Main Results:
- PrP(C) was found in MVs associated with lipid raft components in both human and murine samples.
- Infectious PrP(Sc) was identified within MVs released from prion-infected neuronal cells.
- PrP(Sc)-containing MVs demonstrated infectivity in both in vitro and in vivo models.
Conclusions:
- Membrane-derived microvesicles (MVs) play a significant role in the intercellular spread of PrP(C) and prion diseases.
- MVs contribute to prion neuroinvasion by transporting infectious PrP(Sc) to the central nervous system.
- These findings suggest MVs as potential therapeutic targets for prion diseases.
Related Concept Videos
Subviral Agents
Protein Diffusion in the Membrane
Intracellular Movement of Viruses and Bacteria
Fusion of Secretory Vesicles with the Plasma Membrane
In 1993, Jim Rothman proposed that the antiparallel pairing of vesicular and transmembrane SNAREs, or...
IP3/DAG Signaling Pathway
Infection
The chain begins with pathogens: bacteria, viruses, fungi, prions, or parasites such as protozoa helminths. These can be present on the skin as transient or resident flora, or they can be acquired from the environment. Identifying and treating the type of infection and...

