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Efficient Recombinant Parvovirus Production with the Help of Adenovirus-derived Systems
Published on: April 23, 2012
Late Maturation Steps Preceding Selective Nuclear Export and Egress of Progeny Parvovirus
Raphael Wolfisberg1, Christoph Kempf2, Carlos Ros3
1Department of Chemistry and Biochemistry, University of Bern, Bern, Switzerland.
Unlabelled:
Although the mechanism is not well understood, growing evidence indicates that the nonenveloped parvovirus minute virus of mice (MVM) may actively egress before passive release through cell lysis. We have dissected the late maturation steps of the intranuclear progeny with the aims of confirming the existence of active prelytic egress and identifying critical capsid rearrangements required to initiate the process. By performing anion-exchange chromatography (AEX), we separated intranuclear progeny particles by their net surface charges. Apart from empty capsids (EC), two distinct populations of full capsids (FC) arose in the nuclei of infected cells. The earliest population of FC to appear was infectious but, like EC, could not be actively exported from the nucleus. Further maturation of this early population, involving the phosphorylation of surface residues, gave rise to a second, late population with nuclear export potential. While capsid surface phosphorylation was strictly associated with nuclear export capacity, mutational analysis revealed that the phosphoserine-rich N terminus of VP2 (N-VP2) was dispensable, although it contributed to passive release. The reverse situation was observed for the incoming particles, which were dephosphorylated in the endosomes. Our results confirm the existence of active prelytic egress and reveal a late phosphorylation event occurring in the nucleus as a selective factor for initiating the process.
Importance:
In general, the process of egress of enveloped viruses is active and involves host cell membranes. However, the release of nonenveloped viruses seems to rely more on cell lysis. At least for some nonenveloped viruses, an active process before passive release by cell lysis has been reported, although the underlying mechanism remains poorly understood. By using the nonenveloped model parvovirus minute virus of mice, we could confirm the existence of an active process of nuclear export and further characterize the associated capsid maturation steps. Following DNA packaging in the nucleus, capsids required further modifications, involving the phosphorylation of surface residues, to acquire nuclear export potential. Inversely, those surface residues were dephosphorylated on entering capsids. These spatially controlled phosphorylation-dephosphorylation events concurred with the nuclear export-import potential required to complete the infectious cycle.
Insights
Minute virus of mice (MVM) actively egresses from the nucleus before cell lysis. This active prelytic egress requires capsid phosphorylation for nuclear export, a key step in the viral infectious cycle.
Area of Science:
- Virology
- Molecular Biology
- Cell Biology
Background:
- Nonenveloped viruses, like minute virus of mice (MVM), typically egress via cell lysis.
- Evidence suggests some nonenveloped viruses may employ active prelytic egress mechanisms.
- The precise molecular events governing MVM nuclear egress remain poorly understood.
Purpose of the Study:
- To confirm active prelytic egress of minute virus of mice (MVM).
- To identify critical capsid maturation events initiating MVM nuclear export.
- To elucidate the role of phosphorylation in MVM egress.
Main Methods:
- Anion-exchange chromatography (AEX) to separate intranuclear MVM progeny by charge.
- Analysis of empty capsids (EC) and two populations of full capsids (FC).
- Mutational analysis of the VP2 N-terminal region (N-VP2) and surface residue phosphorylation.
Main Results:
- Two distinct populations of intranuclear full capsids (FC) were identified.
- A late phosphorylation event on capsid surface residues conferred nuclear export potential.
- Phosphorylation was essential for nuclear export, while N-VP2 contributed to passive release.
Conclusions:
- Active prelytic egress of MVM is confirmed, preceding passive release via cell lysis.
- Late intranuclear capsid phosphorylation is a critical selective factor for initiating MVM nuclear export.
- Spatially controlled phosphorylation and dephosphorylation events regulate MVM nuclear import and export.
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