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Updated: Jan 26, 2026

Assembly and Characterization of Polyelectrolyte Complex Micelles
Published on: March 2, 2020
Complex Membrane Remodeling during Virion Assembly of the 30,000-Year-Old Mollivirus Sibericum
E R Quemin1, S Corroyer-Dulmont1, A Baskaran1
1Ultrastructural Bio-Imaging (UBI), Center for Ressources and Research in Technology (C2RT) and Department of Cell Biology and Infection, Institut Pasteur, Paris, France.
Abstract:
Cellular membranes ensure functional compartmentalization by dynamic fusion-fission remodeling and are often targeted by viruses during entry, replication, assembly, and egress. Nucleocytoplasmic large DNA viruses (NCLDVs) can recruit host-derived open membrane precursors to form their inner viral membrane. Using complementary three-dimensional (3D)-electron microscopy techniques, including focused-ion beam scanning electron microscopy and electron tomography, we show that the giant Mollivirus sibericum utilizes the same strategy but also displays unique features. Indeed, assembly is specifically triggered by an open cisterna with a flat pole in its center and open curling ends that grow by recruitment of vesicles never reported for NCLDVs. These vesicles, abundant in the viral factory (VF), are initially closed but open once in close proximity to the open curling ends of the growing viral membrane. The flat pole appears to play a central role during the entire virus assembly process. While additional capsid layers are assembled from it, it also shapes the growing cisterna into immature crescent-like virions and is located opposite to the membrane elongation and closure sites, thereby providing virions with a polarity. In the VF, DNA-associated filaments are abundant, and DNA is packed within virions prior to particle closure. Altogether, our results highlight the complexity of the interaction between giant viruses and their host. Mollivirus assembly relies on the general strategy of vesicle recruitment, opening, and shaping by capsid layers similar to all NCLDVs studied until now. However, the specific features of its assembly suggest that the molecular mechanisms for cellular membrane remodeling and persistence are unique.IMPORTANCE Since the first giant virus Mimivirus was identified, other giant representatives are isolated regularly around the world and appear to be unique in several aspects. They belong to at least four viral families, and the ways they interact with their hosts remain poorly understood. We focused on Mollivirus sibericum, the sole representative of "Molliviridae," which was isolated from a 30,000-year-old permafrost sample and exhibits spherical virions of complex composition. In particular, we show that (i) assembly is initiated by a unique structure containing a flat pole positioned at the center of an open cisterna, (ii) core packing involves another cisterna-like element seemingly pushing core proteins into particles being assembled, and (iii) specific filamentous structures contain the viral genome before packaging. Altogether, our findings increase our understanding of how complex giant viruses interact with their host and provide the foundation for future studies to elucidate the molecular mechanisms of Mollivirus assembly.
Insights
Giant Mollivirus sibericum virus assembly utilizes unique vesicle recruitment and a central flat pole structure, differing from other Nucleocytoplasmic large DNA viruses (NCLDVs). This reveals novel mechanisms in giant virus-host interactions.
Area of Science:
- Virology
- Cell Biology
- Structural Biology
Background:
- Cellular membranes are crucial for cell function and are targeted by viruses.
- Nucleocytoplasmic large DNA viruses (NCLDVs) use host membranes for their replication.
- Giant viruses, like Mollivirus sibericum, exhibit unique interactions with host cells.
Purpose of the Study:
- To investigate the assembly process of the giant Mollivirus sibericum.
- To elucidate the unique strategies employed by Mollivirus sibericum during its replication cycle.
- To understand the complex interplay between giant viruses and host cellular machinery.
Main Methods:
- Utilized complementary three-dimensional (3D)-electron microscopy techniques.
- Employed focused-ion beam scanning electron microscopy (FIB-SEM).
- Applied electron tomography (ET) for high-resolution imaging.
Main Results:
- Mollivirus sibericum assembly initiated by a unique open cisterna with a central flat pole.
- Recruitment and opening of host-derived vesicles are essential for viral membrane formation.
- The flat pole directs capsid assembly, virion shaping, and establishes polarity.
- Viral DNA is packed within virions via DNA-associated filaments prior to closure.
Conclusions:
- Mollivirus sibericum employs a general NCLDV strategy but with unique features.
- Specific assembly mechanisms suggest novel molecular pathways for cellular membrane remodeling.
- Findings enhance understanding of giant virus-host interactions and Mollivirus assembly.
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