Active Genetics & Molecular Biology Infection & Immunity

Revealing the hidden roles of ssRNA genomes regulating viral infectivity

In plain English

AI plain-English summary

A virus’s genetic material actively controls its own release from the protective shell that carries it between cells, a process the researchers call “molecular frustration.” This matters because most antiviral drugs target viral proteins, which mutate rapidly and become resistant. The researchers have discovered that the genomes of many major virus families—including Hepatitis B and potentially the next pandemic “Virus X”—contain conserved RNA motifs called Packaging Signals that determine both how the virus assembles and how it later unloads its genetic cargo inside a host cell. These signals are evolutionarily stable, making them harder for the virus to change. If this research succeeds, it could open the door to broad-spectrum antiviral therapies that work against entire virus families rather than single pathogens. The same insights into how viruses package and release genetic material could also improve vaccine design and gene therapy delivery, where getting therapeutic DNA or RNA into cells efficiently is a persistent challenge. The work is fundamental science—it asks how viruses work at the molecular level—but the conserved nature of these signals makes them unusually promising drug targets.

View original technical description
We discovered a molecular mechanism that regulates virus assembly in different families of positive-sense, single-stranded RNA viruses and the para-retrovirus Hepatitis B Virus. These viruses encompass multiple dispersed sequences/secondary motifs termed Packaging Signals (PSs) in their genomes (gRNAs) that have distinct affinities for their cognate coat protein (CP). This hierarchy of CP affinities defines a preferred assembly pathway, simplifying assembly in complex molecular environments and ensuring genetic robustness to mutation. In this research programme we will investigate a further major gRNA-encoded principle of viral infectivity. Virions are transport vehicles between host cells, that cannot afford to become too stable, or they would lose the ability to deliver their cargoes. It appears that PS-gRNA contacts rearrange in the fully assembled virion, preparing it for gRNA release in response to defined cues from the host cell. We will explore the role(s) of this “molecular frustration” in clinically-important viral lifecycles using a unique interdisciplinary combination of tools we have created. As PSs motifs are evolutionarily conserved across viral families, their interactions with CP lend themselves as targets for broad-spectrum anti-viral therapy, including an emerging Virus X. Insights into cargo encapsidation and release can also be exploited in vaccination and gene therapy.

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Researchers

Peter Stockley (EPMC Awardee)Reidun Twarock (EPMC Awardee)

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Original classification

Investigator Award in Science

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