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A Unified Mechanism of +1 Ribosomal Frameshifting.

Ribosomes decode 3-nucleotide codons and move in 1-codon increments to maintain the messenger RNA (mRNA) frame thereby accurately producing the encoded protein. In special cases, including viral genomes and regulatory cellular proteins, frameshifting occurs to expand the coding repertoire of an mRNA to make more than one protein. How these frameshifting events are induced and regulated is an active area of research. Here, we discuss recent progress in the understanding of +1 frameshifting (+1FS), during which the ribosome shifts by 1 mRNA nucleotide in the 3' direction. Structural and biochemical studies yielded insights into +1FS induced by mRNA slippery sequences and transfer RNA (tRNA) stem-loop expansion or modifications. tRNAs with an additional anticodon nucleotide are explored as a biotechnology tool for expanding the genetic code in an approach termed quadruplet decoding. We revisit the challenges of the quadruplet decoding model, discuss +1FS scenarios in bacteria and eukaryotes, and propose a unifying structural mechanism for +1FS.

Frameshifting, Ribosomal

A protein-dependent riboswitch activates ribosomal frameshifting in cardioviruses.

Programmed -1 ribosomal frameshifting (PRF) is a translational control mechanism used by RNA viruses to regulate the relative abundance of proteins encoded in different reading frames. Cardioviruses exhibit the highest known PRF efficiency, with ∼85% of ribosomes shifting into the -1 frame. This unusual event requires an interaction between the viral 2A protein and a stimulatory element in the RNA genome, but the basis for protein dependence is unclear. To address this, here we investigate the structure and dynamics of the PRF signal in Theiler's murine encephalitis virus (TMEV). By combining X-ray crystallography, small-angle X-ray scattering (SAXS), and single-molecule fluorescence resonance energy transfer (smFRET), we show that 2A binding switches the RNA from a stem-loop conformation into a pseudoknot, and we demonstrate that pseudoknot formation is essential for efficient PRF in vitro and in cells. Together, these findings illustrate how the cardiovirus PRF element behaves as a protein-dependent riboswitch, defining the molecular mechanism by which frameshifting is conditionally activated.

Frameshifting, Ribosomal

Programmed ribosomal frameshifting triggers translational stress to promote viral replication.

Programmed ribosomal frameshifting (PRF) is a conserved viral strategy for expressing polyproteins from compact genomes. Although PRF is traditionally viewed as a structural mechanism, here we show that it functions as a regulatory signal that rewires host translation in favor of viral replication. A minimal SARS-CoV-2 PRF element is sufficient to activate the GCN2 arm of the integrated stress response (ISR) independently of the canonical ISR sensor ZAKα. This activation serves as a temporal switch during early infection to shut off host translation and is required for viral propagation in cells and human airway organoids. Proteomic and genetic screens identify DRG1 and IGF2BP3 as key mediators of PRF-induced GCN2 activation. We further show that this PRF-GCN2 axis is conserved in human immunodeficiency virus (HIV)-1 and West Nile virus, highlighting its broad relevance across RNA viruses. These findings reveal a sophisticated mechanism of viral translational control, highlighting PRF as a stress-inducing module that enhances viral replication.

RNA virus

Programmed ribosomal frameshifting during PLEKHM2 mRNA decoding generates a constitutively active proteoform that supports myocardial function.

Programmed ribosomal frameshifting is a process where a proportion of ribosomes change their reading frame on an mRNA. While frameshifting is commonly used by viruses, very few phylogenetically conserved examples are known in nuclear encoded genes. Here, we report a +1 frameshifting event during decoding of the human gene PLEKHM2 that provides access to a second internally overlapping ORF. The new carboxyl-terminal domain of this frameshift protein forms an α helix, which relieves PLEKHM2 from autoinhibition and allows it to move to the tips of cells without activation by ARL8. Reintroducing both the canonically translated and frameshifted protein are necessary to restore normal contractile function of PLEKHM2 knockout cardiomyocytes, demonstrating the necessity of frameshifting for normal cardiac activity.

Frameshifting, Ribosomal

hnRNPC facilitates coronavirus replication by directly binding the frameshift-stimulatory element of viral genomic RNA.

Translation of key viral replicative proteins in coronaviruses requires a programmed -1 ribosomal frameshifting (-1 PRF) event controlled by the viral frameshift-stimulatory element (FSE). Although previous studies have analyzed host factor dependencies of coronaviruses, how host cellular factors alter -1 PRF efficiency and affect viral replication remains poorly understood. Here, using RNA pull-down combined with LC-MS/MS analysis, we identified heterogeneous nuclear ribonucleoprotein C (hnRNPC) as a major interacting protein of FSE RNA. Coronavirus infection triggers hnRNPC mRNA decay, alters hnRNPC protein levels, and induces its cytoplasmic relocalization, where it appears to bind directly to FSE RNA through residues Asn7 and Asn83. This binding is associated with increased -1 PRF efficiency and may facilitate coronavirus replication. Deletion mapping analysis shows that hnRNPC preferentially binds U-rich regions of the FSE RNA. Finally, we demonstrated that the small molecule Elbasvir directly binds hnRNPC, disrupting the interaction between hnRNPC and FSE RNA and inhibiting coronavirus replication by decreasing -1 PRF efficiency. Collectively, our study identifies hnRNPC as a key host cofactor for coronaviruses and provides a novel target for broad-spectrum antiviral drug development.

RNA, Viral

Optimization of Structure-Guided Development of Chemical Probes for the Pseudoknot RNA of the Frameshift Element in SARS-CoV-2.

Targeting the RNA genome of SARS-CoV-2 is a viable option for antiviral drug development. We explored three ligand binding sites of the core pseudoknot RNA of the SARS-CoV-2 frameshift element. We iteratively optimized ligands, based on improved affinities, targeting these binding sites and report on structural and dynamic properties of the three identified binding sites. Available experimental 3D structures of the pseudoknot element were compared to SAXS and NMR data to validate its dominant folding state in solution. In order to experimentally map in silico predicted binding sites, NMR assignments of the majority of nucleobases were achieved by segmental labeling of the pseudoknot RNA and isotope-filtered NMR experiments at 1.2 GHz, demonstrating the value of NMR spectroscopy to supplement modelling and docking data. Optimized ligands with enhanced affinity were shown to specifically inhibit frameshifting without affecting 0-frame translation in cell-free translation assays, establishing the frameshift element as target for drug-like ligands of low molecular weight.

SARS-CoV-2

Discovery of the order 'Quisvirales' redefines the evolution of RNA replication and transcription in the phylum Pisuviricota.

Genome replication in positive-stranded RNA (ssRNA+) viruses is mediated by cognate enzymes, including ubiquitous RNA-dependent RNA polymerase (RdRp). In ssRNA+ viruses with multiple open reading frames (ORFs) in their genomes, replication often is accompanied by synthesis of subgenomic RNAs (transcription) for expression of 3'-proximal ORFs. In addition, all ssRNA+ viruses with genomes larger than ~7 kb encode helicases, linking helicases to RNA genome expansion. Helicases are essential ATPases that unwind nucleic acids and are classified into six recognized superfamilies (SF1-SF6). In the phylum Pisuviricota that includes important pathogens, helicases of SF1-SF3 are integrated into multi-enzyme replicase polyprotein(s) including 3C(-like) protease (3CLpro) and RdRp. Here, large-scale mining of invertebrate metatranscriptomes and targeted genome sequence assembly uncovered six spider-associated ssRNA+ viruses that, based on their conserved 3CLpro-RdRp module in replicase polyproteins, genome size (20-22 kb), and phylogeny, form a family-like cluster in a putative order, named 'Quisvirales'. Quisviruses have similar genome and replicase architectures to enveloped coronaviruses and other nidoviruses. Notably, quisviruses encode ORFs 1a and 1b with predicted -1 programmed ribosomal frameshifting elements in the ORF1a/b overlap region. Using an original mapping approach for detecting chimeric sequencing reads, we obtained evidence that 3'-proximal ORFs are expressed via 5'-coterminal, leader-containing subgenomic RNAs. This suggests that the quisvirus subgenomic RNAs are generated through discontinuous transcription-a mechanism otherwise exclusively found in nidoviruses among the many ssRNA+ virus orders that synthesize subgenomic RNAs. Striking differences between nido- and quisviruses are, however, the RdRp being the only common core ORF1b-encoded enzyme and the replacement of the nidovirus SF1 helicase by a novel superfamily helicase. This quisvirus SF7 helicase, like the Picornavirales SF3 helicase, comprises an AAA+ (ATPase-like) domain typical for ring-forming helicases and thus must play an essential role in replication. The discovery of the order 'Quisvirales' demonstrates that viruses employing large replicase polyproteins of nidovirus-like complexity and discontinuous transcription may have evolved repeatedly from an 3CLpro-RdRp-encoding ancestor.

AAA+/RecA-like ATPase

Misdetection of frameshifts in SARS-CoV-2 genomes: need for additional harmonisation and efficient monitoring of data workflows.

Five years after the outbreak of the SARS-CoV-2 pandemic in 2020, diagnostic laboratories have moved from massive sequencing of thousands of samples to routine surveillance of SARS-CoV-2 cases, as with all other respiratory viruses. Surveillance remains of paramount importance to prevent a further SARS-CoV-2 surge, as the virus has been shown to mutate rapidly and can render available drugs and vaccines ineffective. During the pandemic, several bioinformatics pipelines and workflows have been developed to streamline analysis, shorten turnaround time and ensure reproducibility. As the number of samples decreases, laboratories are moving towards more flexible sequencing strategies and optimizing the cost per sample. However, workflow redesigns, even if individual steps have proven successful time and time again, can lead to challenges when changes in a bioinformatics pipeline are introduced (e.g. version updates, implementation of new features, etc.), a new combination of viral mutations emerge or a change in wet-lab procedures leads to unpredictable results. Here, we present a report of misidentified frameshift mutations in the consensus sequence of SARS-CoV-2, which led to an incorrect assumption of mutations in the spike and nucleocapsid viral proteins with the potential to affect PCR detection or even antigen testing. This investigation exemplifies the need for better awareness of the challenges that can occur even when using routinely applied protocols and analytical workflows and highlights the need for cooperation between experts of NGS, bioinformaticians and decision-makers towards more harmonized data workflows.

SARS-CoV-2

Novel TCOF1 Frameshift Variant and Phenotypic Heterogeneity in a Chinese Family With Treacher Collins Syndrome.

BACKGROUND: Treacher Collins syndrome (TCS) is a congenital craniofacial disorder characterized by malar and mandibular hypoplasia, downward-slanting palpebral fissures, and conductive hearing loss. Pathogenic variants in TCOF1 account for most cases, with POLR1D, POLR1C, and POLR1B also implicated. METHODS: Whole-exome sequencing was performed in a two-generation Chinese family with TCS, followed by Sanger sequencing validation. Clinical features were systematically evaluated, and bioinformatic analyses combined with structural modeling were employed to assess the potential pathogenicity of the identified variant. RESULTS: In this study, a novel heterozygous frameshift variant in TCOF1 (NM_001371623.1:c.1601_1602delCC, p.Pro534Leufs*15) was identified in the proband and his affected father. The proband presented classic TCS features including craniofacial skeletal hypoplasia, downward-slanting palpebral fissures, and conductive hearing loss. He also carried a right-sided preauricular fistula, a nonclassical feature of TCS. The same variant was detected in his affected father with a substantially milder phenotype, indicating marked intrafamilial phenotypic variability. Bioinformatic analysis and structural modeling predicted that this variant produces a severely truncated Treacle protein lacking key functional domains, which is predicted to disrupt nucleolar localization and ribosome biogenesis. CONCLUSION: Our findings expand the variant spectrum of TCOF1, highlight phenotypic heterogeneity in TCS, and reinforce the critical role of molecular diagnosis in distinguishing TCS from phenotypically overlapping craniofacial syndromes.

Humans