Completed Genetics & Molecular Biology Infection & Immunity

Structure, mechanism and dynamics of recoding in viral infection

In plain English

AI plain-English summary

Some RNA viruses, including SARS-CoV-2 and HIV-1, trick the cell’s protein-making machinery into reading their genetic instructions in a different way, a process called recoding. This matters because these viruses have tiny genomes and cannot afford to waste space. Recoding lets them squeeze multiple proteins from a single stretch of RNA, producing the precise ratios needed to build infectious particles. Without it, the viruses cannot replicate. Yet the structural details of how the ribosome, the viral RNA, and helper proteins coordinate these events remain largely unknown. Classical methods cannot capture the rapid, step-by-step movements of individual ribosomes, leaving a blind spot in understanding viral replication. This project will use single-molecule fluorescent imaging to watch recoding happen in real time, both in test tubes and inside living cells. The researcher will then freeze key moments for cryo-electron microscopy, revealing the atomic shapes of the ribosome as it shifts reading frames. If successful, the work will map the mechanistic principles of recoding for several major viruses, including SARS-CoV-2 and HIV-1. This is fundamental science, not a direct therapy. But understanding the precise molecular choreography could reveal weak points—specific RNA structures or transient ribosomal states—that future drugs might target to block viral replication.

View original technical description
Many RNA viruses (e.g. SARS-CoV-2, HIV-1) have evolved ways of reprogramming translation to expand the coding capacity of their small genomes. ‘Recoding’ events such as -1 frameshifting, stop codon read-through and StopGo peptide release are necessary for viral replication, producing viral proteins in optimal ratios for efficient assembly. Recoding is regulated by a complex interplay between the elongating ribosome, cis-acting elements in the mRNA or nascent peptide, and trans-acting protein factors. Elucidating the structural basis of recoding is essential to understand viral pathogenesis. However, classical biochemical approaches cannot accurately capture kinetics or per-ribosome heterogeneity, making it difficult to define a "window of opportunity" for structure determination. Recent technological advances allow single-molecule fluorescent imaging of translation in real-time. I will apply these methods to study recoding in vitro and in live cells, starting with -1 frameshifting in SARS-CoV-2, HIV-1 and EMCV, which utilise topologically-distinct stimulatory elements. I will determine the structure of key ribosomal states by time-resolved cryo-EM, and investigate the structure and stability of stimulatory elements using crystallography, single molecule FRET and optical tweezers. Longer-term, this approach will be applied to investigate other recoding events, thus revealing universal and case-specific mechanistic principles, and highlighting new avenues for therapeutic intervention.

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Researchers

Chris Hill (EPMC Awardee)Francis Barr (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Ribosomal frameshifting and readthrough in virus gene expression.
Structural and biophysical studies of RNA-protein complexes that stimulate ribosomal frameshifting during viral infection
Non-canonical gene expression: Investigating a novel stimulator and a novel function for ribosomal frameshifting
The rescue of stalled translational conplexes: recoding of a sense to nonsense codon
Exploring transcription of a large DNA virus of importance for global food security

Original classification

Sir Henry Dale Fellowship

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