Search bioRxiv⌕ Search

Biology subjects

Mills, J. T.

Publications and source records attributed to Mills, J. T..

3 recordsLinked to original sources

Enhanced inter-chain hydrogen bonding in the murine norovirus VP1 capsid leads to increased particle stability and delayed viral uncoating

Capsid stability is vital for virion survival as the capsid must withstand varying environmental challenges such as pH and temperature to allow the virus to reach a target cell. Noroviruses are non-enveloped, icosahedral, positive-sense RNA viruses of importance to human health globally, with no approved vaccine or antiviral available. Despite this, the molecular mechanisms behind norovirus capsid stability and capsid rearrangement prior to RNA translocation are understudied. Using murine norovirus as a model, we utilised thermal stress to create a thermally stable virus population. By introducing three identified substitutions in the major capsid protein VP1 from this virus population into an infectious clone, we were able to create a heat and pH stable virus that had delayed viral uncoating during the infectious lifecycle. Cryo-EM reconstructions of the triple substitution virus demonstrated that enhanced inter-chain hydrogen bonding was vital for increased capsid stability. Finally, mutagenesis to remove the enhanced inter-chain hydrogen bonding reverted capsid stability back to wild-type levels. This work contributes to fundamental calicivirus biology by demonstrating areas of importance in capsid stability down to amino acid resolution. Furthermore, this work could inform vaccine design for a thermostable norovirus vaccine in the future. Author SummaryNoroviruses cause gastroenteritis and globally contribute to the death of up to 250,000 people worldwide per annum and an estimated healthcare cost of $4 billion. Despite this, there is no vaccine or antiviral treatment available, thus more work needs to be conducted to understand the mechanisms that underpin the viral life cycle. The norovirus capsid is a meta-stable shell-like structure evolved to protect the viral RNA from the harsh external environment, until cellular triggers allow genome release to initiate infection of a host cell. However, the molecular interactions that are key for controlling this balance are relatively unstudied. In this report, we identify that hydrogen bonding at the capsid protomer-protomer interface are vital for maintaining this balance, with increased inter-molecular hydrogen bonding at three specific amino acids able to increase viral stability whilst still permitting infectious genome release. Furthermore, reducing inter-molecular hydrogen bonding at these crucial amino acids was able to reverse this mechanism. These results should inform future norovirus vaccine studies, where thermostable virus-like-particles are needed to overcome issues with cold-chain storage.

microbiology↗

Integrative Structure of Norovirus NS3 Suggests a Role in RNA Transport

Human noroviruses (HuNoVs) are the leading global cause of non-bacterial gastroenteritis, yet no vaccines or antiviral therapies are currently approved1. The viral non-structural protein NS3 is a membrane-bound AAA+ ATPase of superfamily 3 (SF3) with multiple proposed roles in the norovirus replication cycle. However, the structure of NS3, and the mechanisms by which it contributes to genome replication and membrane remodeling, have remained unknown. We engineered a soluble, hexameric, and catalytically active form of NS3 and determined its cryo-EM structure in the presence of a nucleotide analogue at 2.9 [A] resolution. The structure adopts a split lock-washer architecture characteristic of AAA+ motors that operate via a hand-over-hand translocation mechanism2. Modeling of the nucleotide-binding site reveals conserved features governing ATP binding and hydrolysis. Using integrative modeling with AlphaFold3, we generated a full-length, membrane-associated model of NS3, in which an N-terminal transmembrane domain, central helical bundle, and AAA+ motor form a continuous conduit. This model supports a role for NS3 as a candidate membrane-spanning RNA translocase that couples ATP hydrolysis to genome movement. This structural framework helps address long-standing gaps in our understanding of norovirus replication and establishes a basis for mechanistic studies and structure-guided antiviral design.

microbiology↗

Amino acid substitutions in norovirus VP1 dictate cell tropism via an attachment process dependent on membrane mobility.

Viruses interact with receptors on the cell surface to initiate and co-ordinate infection. The distribution of receptors on host cells can be a key determinant of viral tropism and host infection. Unravelling the complex nature of virus-receptor interactions is, therefore, of fundamental importance to understanding viral pathogenesis. Noroviruses are non-enveloped, icosahedral, positive-sense RNA viruses of global importance to human health, with no approved vaccine or antiviral agent available. Here we use murine norovirus as a model for the study of molecular mechanisms of virus-receptor interactions. We show that variation at a single amino acid residue in the major viral capsid protein had a key impact on the interaction between virus and receptor. This variation did not affect virion production or virus growth kinetics, but a specific amino acid was rapidly selected through evolution experiments, and significantly improved cellular attachment when infecting immune cells in suspension. However, reducing plasma membrane mobility counteracted this phenotype, providing insight into for the role of membrane fluidity and receptor recruitment in norovirus cellular attachment. When the infectivity of a panel of recombinant viruses with single amino acid variations was compared in vivo, there were significant differences in the distribution of viruses in a murine model, demonstrating a role in cellular tropism in vivo. Overall, these results highlight the importance of lipid rafts and virus-induced receptor recruitment in viral infection, as well as how capsid evolution can greatly influence cellular tropism, within-host spread and pathogenicity. ImportanceAll viruses initiate infection by utilising receptors to attach to target host cells. These virus-receptor interactions can therefore dictate viral replication and pathogenesis. Understanding the nature of virus-receptor interactions could also be important to developing novel therapies. Noroviruses are non-enveloped icosahedral viruses of medical importance. They are a common cause of acute gastroenteritis with no approved vaccine or therapy and are a tractable model for studying fundamental virus biology. In this study, we utilise the murine norovirus model system to show that variation in a single amino acid of the major capsid protein can alone can affect viral infectivity through improved attachment to suspension cells. Reducing plasma membrane mobility reduced infectivity, providing an insight into the importance of membrane mobility for receptor recruitment. Furthermore, variation at this site was able to change viral distribution in a murine model, illustrating how in-host capsid evolution can influence viral infectivity and immune evasion.

microbiology↗