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Averaging of Viral Envelope Glycoprotein Spikes from Electron Cryotomography Reconstructions using Jsubtomo
Published on: October 21, 2014
Cryo-electron Microscopy Structure of the Native Prototype Foamy Virus Glycoprotein and Virus Architecture
Grégory Effantin1,2, Leandro F Estrozi1, Nick Aschman2
1Institut de Biologie Structurale (IBS), Univ. Grenoble Alpes, CEA, CNRS, Grenoble, France.
Abstract:
Foamy viruses (FV) belong to the genus Spumavirus, which forms a distinct lineage in the Retroviridae family. Although the infection in natural hosts and zoonotic transmission to humans is asymptomatic, FVs can replicate well in human cells making it an attractive gene therapy vector candidate. Here we present cryo-electron microscopy and (cryo-)electron tomography ultrastructural data on purified prototype FV (PFV) and PFV infected cells. Mature PFV particles have a distinct morphology with a capsid of constant dimension as well as a less ordered shell of density between the capsid and the membrane likely formed by the Gag N-terminal domain and the cytoplasmic part of the Env leader peptide gp18LP. The viral membrane contains trimeric Env glycoproteins partly arranged in interlocked hexagonal assemblies. In situ 3D reconstruction by subtomogram averaging of wild type Env and of a Env gp48TM- gp80SU cleavage site mutant showed a similar spike architecture as well as stabilization of the hexagonal lattice by clear connections between lower densities of neighboring trimers. Cryo-EM was employed to obtain a 9 Å resolution map of the glycoprotein in its pre-fusion state, which revealed extensive trimer interactions by the receptor binding subunit gp80SU at the top of the spike and three central helices derived from the fusion protein subunit gp48TM. The lower part of Env, presumably composed of interlaced parts of gp48TM, gp80SU and gp18LP anchors the spike at the membrane. We propose that the gp48TM density continues into three central transmembrane helices, which interact with three outer transmembrane helices derived from gp18LP. Our ultrastructural data and 9 Å resolution glycoprotein structure provide important new insights into the molecular architecture of PFV and its distinct evolutionary relationship with other members of the Retroviridae.
Insights
Foamy viruses (FVs), a distinct retroviral lineage, show potential as gene therapy vectors due to efficient human cell replication. Ultrastructural data reveals PFV particle architecture and glycoprotein interactions, offering insights into FV molecular biology.
Area of Science:
- Virology
- Structural Biology
- Gene Therapy
Background:
- Foamy viruses (FVs) are a distinct lineage within the Retroviridae family.
- Despite asymptomatic zoonotic transmission, FVs replicate efficiently in human cells, making them promising gene therapy vector candidates.
Purpose of the Study:
- To elucidate the ultrastructural architecture of purified prototype foamy virus (PFV) particles and infected cells.
- To determine the molecular structure of the PFV glycoprotein (Env) in its pre-fusion state.
Main Methods:
- Cryo-electron microscopy (cryo-EM) and cryo-electron tomography (cryo-ET).
- Subtomogram averaging of wild-type and mutant Env glycoproteins.
- High-resolution (9 Å) cryo-EM structure determination of the Env glycoprotein.
Main Results:
- Mature PFV particles exhibit a defined capsid and a less ordered outer shell.
- Viral Env glycoproteins form hexagonal assemblies on the viral membrane.
- The 9 Å Env structure reveals extensive trimer interactions and a unique anchoring mechanism at the membrane.
Conclusions:
- The study provides novel insights into the molecular architecture of PFV, including its capsid, Env glycoprotein structure, and membrane organization.
- The findings enhance our understanding of FV assembly and potential interactions during infection.
- The detailed structural information may inform the development of FV-based gene therapy vectors.
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