Active Genetics & Molecular Biology Cells, Biochemistry & Physiology

Molecular mechanism of genome packaging by dsDNA viruses

In plain English

AI plain-English summary

Every virus in the dsDNA family—from the gut-infecting crAssphage to the poxvirus that causes smallpox—must pack its genetic material into a protein shell with the precision of a mechanical press, and this project will use cryo-electron microscopy to watch exactly how the molecular motor that does the packing works. The problem is that while we know these viruses use a protein called terminase to force DNA into their capsids, the structural details of how the motor grips, ratchets, and pushes the DNA are unknown. Without that atomic-level picture, we cannot design drugs that jam the motor. The work will also tackle a second, unrelated class of DNA-packing motors found in viruses like the poxvirus family, which use a different protein (FtsK-like) to achieve the same result. This is fundamental science. If it succeeds, it will reveal the precise mechanics of a process essential to thousands of virus species. That structural knowledge could eventually inform the design of broad-spectrum antiviral compounds that block DNA packaging—a step that would affect how we treat infections ranging from gut viruses to poxviruses. But the immediate payoff is a deeper understanding of how molecular machines convert chemical energy into mechanical work.

View original technical description
The research will focus on understanding how dsDNA viruses fill their capsids with DNA. The main emphasis is on using structural approaches, mostly Cryo-EM, although we will also use complementary biophysical techniques including activity/binding assays, to define composition and stoichiometry of protein-nucleic acid complexes, in addition to the affinity of the interaction. Key goals: - To understand the mechanism of DNA translocation by dsDNA viruses that fill their capsid with DNA using a terminase protein. This research will be based on in vitro packaging systems that we have established for bacteriophages HK97 and P23-45; and will also utilise crAssphages isolated from the human gut. - To understand the structure-function relationship in FtsK-like DNA packaging motors present in another large class of dsDNA viruses comprising bacterial tectiviruses, corticoviruses and eukaryotic poxviruses. This research will be performed using corticovirus RC12 and tectivirus PhiKo.

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Researchers

Alfred Antson (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Structural biology of DNA-packaging machines from dsDNA viruses
Structure and mechanism of nucleic acid-processing machines in viral biogenesis
Structure and mechanism of multicomponent protein-nucleic acid assemblies.
Structural and mechanistic characterisation of DNA packaging motors from human Cytomegalovirus and related viruses
Action! Modelling DNA nano-machines for deciphering their molecular mechanisms

Original classification

Investigator Award in Science

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