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.

Journal of Virology
|April 19, 2019
PubMed

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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