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Correlative Microscopy for 3D Structural Analysis of Dynamic Interactions
Published on: June 24, 2013
Cryo-electron tomography of Marburg virus particles and their morphogenesis within infected cells
Tanmay A M Bharat1, James D Riches, Larissa Kolesnikova
1Structural and Computational Biology Unit, European Molecular Biology Laboratory, Heidelberg, Germany.
Abstract:
Several major human pathogens, including the filoviruses, paramyxoviruses, and rhabdoviruses, package their single-stranded RNA genomes within helical nucleocapsids, which bud through the plasma membrane of the infected cell to release enveloped virions. The virions are often heterogeneous in shape, which makes it difficult to study their structure and assembly mechanisms. We have applied cryo-electron tomography and sub-tomogram averaging methods to derive structures of Marburg virus, a highly pathogenic filovirus, both after release and during assembly within infected cells. The data demonstrate the potential of cryo-electron tomography methods to derive detailed structural information for intermediate steps in biological pathways within intact cells. We describe the location and arrangement of the viral proteins within the virion. We show that the N-terminal domain of the nucleoprotein contains the minimal assembly determinants for a helical nucleocapsid with variable number of proteins per turn. Lobes protruding from alternate interfaces between each nucleoprotein are formed by the C-terminal domain of the nucleoprotein, together with viral proteins VP24 and VP35. Each nucleoprotein packages six RNA bases. The nucleocapsid interacts in an unusual, flexible "Velcro-like" manner with the viral matrix protein VP40. Determination of the structures of assembly intermediates showed that the nucleocapsid has a defined orientation during transport and budding. Together the data show striking architectural homology between the nucleocapsid helix of rhabdoviruses and filoviruses, but unexpected, fundamental differences in the mechanisms by which the nucleocapsids are then assembled together with matrix proteins and initiate membrane envelopment to release infectious virions, suggesting that the viruses have evolved different solutions to these conserved assembly steps.
Insights
Cryo-electron tomography revealed Marburg virus nucleocapsid structure and assembly. Similarities and differences were found in how filoviruses and rhabdoviruses form helical nucleocapsids and initiate budding.
Area of Science:
- Structural biology
- Virology
- Molecular biology
Background:
- Major human pathogens like filoviruses package RNA genomes in helical nucleocapsids.
- Virion heterogeneity complicates study of viral structure and assembly.
Purpose of the Study:
- To determine the structure of Marburg virus nucleocapsids during assembly and after release.
- To investigate the potential of cryo-electron tomography for studying viral assembly in situ.
Main Methods:
- Cryo-electron tomography
- Sub-tomogram averaging
- Infected cell imaging
Main Results:
- Detailed structures of Marburg virus nucleocapsids and assembly intermediates were obtained.
- The nucleoprotein's N-terminal domain determines minimal helical assembly.
- Nucleocapsid interacts flexibly with matrix protein VP40.
- Homology between filovirus and rhabdovirus nucleocapsid helices was observed, alongside distinct assembly mechanisms.
Conclusions:
- Cryo-electron tomography provides detailed structural insights into viral assembly pathways within cells.
- Marburg virus and related viruses exhibit conserved and divergent strategies for nucleocapsid assembly and virion formation.
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