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Updated: Nov 3, 2025

Generation and Assembly of Virus-Specific Nucleocapsids of the Respiratory Syncytial Virus
Published on: July 27, 2021
Cryo-EM structure of the cetacean morbillivirus nucleoprotein-RNA complex
Luca Zinzula1, Florian Beck1, Sven Klumpe1
1Max-Planck Institute of Biochemistry, Department of Molecular Structural Biology, Am Klopferspitz 18, 82152 Martinsried, Germany.
Abstract:
Cetacean morbillivirus (CeMV) is an emerging and highly infectious paramyxovirus that causes outbreaks in cetaceans and occasionally in pinnipeds, representing a major threat to biodiversity and conservation of endangered marine mammal populations in both hemispheres. As for all non-segmented, negative-sense, single-stranded RNA (ssRNA) viruses, the morbilliviral genome is enwrapped by thousands of nucleoprotein (N) protomers. Each bound to six ribonucleotides, N protomers assemble to form a helical ribonucleoprotein (RNP) complex that serves as scaffold for nucleocapsid formation and as template for viral replication and transcription. While the molecular details on RNP complexes elucidated in human measles virus (MeV) served as paradigm model for these processes in all members of the Morbillivirus genus, no structural information has been obtained from other morbilliviruses, nor has any CeMV structure been solved so far. We report the structure of the CeMV RNP complex, reconstituted in vitro upon binding of recombinant CeMV N to poly-adenine ssRNA hexamers and solved to 4.0 Å resolution by cryo-electron microscopy. In spite of the amino acid sequence similarity and consequently similar folding of the N protomer, the CeMV RNP complex exhibits different helical parameters as compared to previously reported MeV orthologs. The CeMV structure reveals exclusive interactions leading to more extensive protomer-RNA and protomer-protomer interfaces. We identified twelve residues, among those varying between CeMV strains, as putatively important for the stabilization of the RNP complex, which highlights the need to study the potential of CeMV N mutations that modulate nucleocapsid assembly to also affect viral phenotype and host adaptation.
Insights
The structure of the Cetacean morbillivirus (CeMV) ribonucleoprotein complex was determined, revealing unique interactions distinct from measles virus. This finding is crucial for understanding CeMV
Area of Science:
- Virology
- Structural Biology
- Marine Mammal Health
Background:
- Cetacean morbillivirus (CeMV) poses a significant threat to marine mammal populations.
- Morbilliviral genome replication relies on nucleoprotein (N) protomers forming ribonucleoprotein (RNP) complexes.
- Structural data for CeMV RNP complexes were previously lacking, hindering understanding of its molecular mechanisms.
Purpose of the Study:
- To determine the high-resolution structure of the CeMV RNP complex.
- To compare the CeMV RNP structure with those of other morbilliviruses, particularly measles virus (MeV).
- To identify key residues involved in CeMV RNP complex stabilization and their potential role in viral adaptation.
Main Methods:
- Reconstitution of the CeMV RNP complex in vitro using recombinant CeMV N protein and poly-adenine ssRNA hexamers.
- High-resolution structure determination using cryo-electron microscopy (cryo-EM) to 4.0 Å resolution.
Main Results:
- The structure of the CeMV RNP complex was solved, revealing distinct helical parameters compared to MeV orthologs.
- Exclusive interactions were identified, leading to more extensive protomer-RNA and protomer-protomer interfaces in CeMV.
- Twelve residues were identified as potentially crucial for RNP complex stabilization, with variations among CeMV strains.
Conclusions:
- The CeMV RNP structure provides novel insights into morbillivirus assembly and replication mechanisms.
- Structural differences highlight unique aspects of CeMV's molecular biology compared to other morbilliviruses.
- Further investigation into CeMV N mutations could elucidate mechanisms of viral adaptation and host range.
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