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Updated: Jul 2, 2026

Purification of High Yield Extracellular Vesicle Preparations Away from Virus
Published on: September 12, 2019
Vesicular egress of non-enveloped lytic parvoviruses depends on gelsolin functioning
Séverine Bär1, Laurent Daeffler, Jean Rommelaere
1Program Infection and Cancer, Abteilung F010 and Institut National de la Santé et de la Recherche Médicale U701, Deutsches Krebsforschungszentrum, Heidelberg, Germany.
Abstract:
The autonomous parvovirus Minute Virus of Mice (MVM) induces specific changes in the cytoskeleton filaments of infected permissive cells, causing in particular the degradation of actin fibers and the generation of "actin patches." This is attributed to a virus-induced imbalance between the polymerization factor N-WASP (Wiscott-Aldrich syndrome protein) and gelsolin, a multifunctional protein cleaving actin filaments. Here, the focus is on the involvement of gelsolin in parvovirus propagation and virus-induced actin processing. Gelsolin activity was knocked-down, and consequences thereof were determined for virus replication and egress and for actin network integrity. Though not required for virus replication or progeny particle assembly, gelsolin was found to control MVM (and related H1-PV) transport from the nucleus to the cell periphery and release into the culture medium. Gelsolin-dependent actin degradation and progeny virus release were both controlled by (NS1)/CKIIalpha, a recently identified complex between a cellular protein kinase and a MVM non-structural protein. Furthermore, the export of newly synthesized virions through the cytoplasm appeared to be mediated by (virus-modified) lysomal/late endosomal vesicles. By showing that MVM release, like entry, is guided by the cytoskeleton and mediated by vesicles, these results challenge the current view that egress of non-enveloped lytic viruses is a passive process.
Insights
Minute Virus of Mice (MVM) uses gelsolin to degrade actin cytoskeleton and transport progeny virions from the nucleus to the cell periphery for release. This virus-mediated process challenges the view of non-enveloped virus egress as passive.
Area of Science:
- Virology
- Cell Biology
- Molecular Biology
Background:
- Minute Virus of Mice (MVM) alters host cell cytoskeleton, degrading actin filaments and forming actin patches.
- This cytoskeletal disruption is linked to an imbalance between N-WASP (Wiscott-Aldrich syndrome protein) and gelsolin, an actin-cleaving protein.
Purpose of the Study:
- To investigate the role of gelsolin in parvovirus propagation and MVM-induced actin processing.
- To determine the impact of gelsolin knockdown on MVM replication, egress, and actin network integrity.
Main Methods:
- Gelsolin activity was reduced (knocked-down) in infected cells.
- Consequences for MVM replication, egress, and actin cytoskeleton were analyzed.
Main Results:
- Gelsolin is not essential for MVM replication or virion assembly but controls virus transport from the nucleus to the cell periphery.
- Gelsolin-dependent actin degradation and progeny virus release are regulated by the (NS1)/CKIIalpha complex.
- Newly synthesized MVM virions are exported via lysosomal/late endosomal vesicles.
Conclusions:
- MVM egress is an active, cytoskeleton-guided process mediated by vesicles, challenging the paradigm of passive release for non-enveloped viruses.
- Gelsolin plays a critical role in MVM-induced actin remodeling and the release of progeny virions.
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