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The Tor pathway, ribosome concentration, and wobble decoding mediate inhibitory effects of the Leu-Pro CUC-CCG codon pair in Saccharomyces cerevisiae.

Translation elongation and efficiency are modulated by the genetic code, with reduced translation efficiency and slow translation caused by 17 inhibitory codon pairs in the yeast Saccharomyces cerevisiae Nine of these inhibitory pairs are functionally important as they are disproportionately strongly conserved within orthologous genes in Saccharomyces sensu stricto For three pairs, including CGA-CGA, inhibition is triggered by ribosome collisions followed by known quality control responses, but the mechanisms by which nine other pairs cause inhibition are unknown. Here, our examination of the molecular basis of inhibition by one such pair, the highly conserved Leu-Pro CUC-CCG codon pair, yielded four findings. First, inhibition is mediated by tRNALeu(UAG), which decodes CUC by a U•C wobble interaction and effectively competes with the nonessential Watson-Crick base-pairing tRNALeu(GAG) Second, despite nearly universal conservation of U33 in tRNAs, the C33 alteration in tRNALeu(GAG) does not significantly impair its function. Third, inhibition likely is mediated by ribosome collisions, as many suppressors bear mutations known or predicted to reduce ribosome concentration, and as local reduction in ribosome concentration suppresses inhibition. Thus, differences between CUC-CCG and CGA-CGA inhibition likely occur downstream from ribosome collisions. Fourth, we find a link between the metabolic state and CUC-CCG inhibition, as we find six suppressor mutations in SCH9, a downstream effector of TORC1 that mediates ribosome production. As Sch9 is inactive during starvation, causing reduced ribosome concentration, one biological function of inhibitory pairs may be to mediate a change in relative expression during starvation conditions.

Ribosomes

Histidine 62 in ArfB is required for stop codon-independent peptidyl-tRNA hydrolysis on the stalled ribosome.

Translating ribosomes can stall on mRNA for various reasons, including nuclease cleavage, arrest peptide sequences or ribosome collisions. In Escherichia coli, several ribosome rescue factors act to release ribosomes stalled at the 3' end of mRNA. Among these factors, ArfB can rescue stalled ribosomes without the help of other factors. ArfB consists of an N-terminal domain containing the catalytic GGQ motif, which mediates peptidyl-tRNA hydrolysis, and a C-terminal extension that functions as a sensor for recognizing stalled ribosomes. However, how these two regions coordinate to resolve ribosome stalling remains unclear. Here, using a reconstituted translation system, we found the functional importance of histidine residues in the N-terminal domain of ArfB. In particular, histidine at position 62 in E. coli ArfB was required for stop codon-independent fMet-tRNA hydrolysis, whereas its substitution did not affect affinity for the ribosome. Furthermore, directed hydroxyl radical probing revealed that H62A mutation did not significantly alter the overall positioning of either the N-terminal domain or the C-terminal extension of ArfB on the ribosome. These findings suggest that H62 contributes to ArfB function during a step following initial ribosome binding, thereby facilitating peptidyl-tRNA hydrolysis.

Ribosomes

eIF5A and polyamines restrict mRNA levels in response to ribosome stalls.

Obstacles to translation elongation stall ribosomes and allow deleterious proteins to accumulate, which threatens cellular health. Cells recognize and clear stalled ribosomes via several interrelated pathways, although the mechanisms by which cells distinguish stalled from normally elongating ribosomes and mount an appropriate response are incompletely understood. While recent work highlights how ribosome collisions help cells to recognize stalled ribosomes, how other factors contribute to detection remains unclear. Here, we report a requirement for the translational factor eIF5A in the mRNA decay response to ribosomal stalling, i.e., No-Go mRNA Decay (NGD). We identified the Caenorhabditis elegans polyamine transporter, catp-6, via a forward genetic screen as a factor required for NGD. During our mechanistic dissection of the catp-6 phenotype, we uncovered a role for cellular polyamines and the translation elongation factor eIF5A in NGD, and we show this requirement is conserved from C. elegans to Saccharomyces cerevisiae. Our analyses support the idea that cells use eIF5A to identify ribosomal stalls and execute NGD and uncover a molecular function for a core protein synthesis factor in limiting expression from stall-inducing mRNAs. Our work offers insight into how cells identify and remove problematic mRNAs from the translational pool. Our work also raises the possibility that dysregulated mRNA decay is an unrecognized pathophysiology associated with polyaminopathies and eIF5A disorders, of relevance to varied neurodegenerative and aging phenotypes and efforts to pharmacologically inhibit eIF5A.

Animals

Ribosome stalling position, spacing, and A-site occupancy impact translation and cotranslational mRNA decay in plants.

Ribosomes can pause during mRNA translation, but what causes pausing, how pauses affect protein production, and whether they trigger cotranslational mRNA decay are poorly understood in plants. Here, we investigate the causes and consequences of ribosome pausing in Arabidopsis and maize. This is accomplished by sizing, mapping, and quantifying footprints of individual ribosomes (monosomes) and closely spaced ribosome pairs (disomes) at single-codon resolution on open reading frames (ORFs). Ribosome footprinting was combined with 5'P-degradome-seq to examine the coincidence of pausing with cotranslational decay under control conditions and brief hypoxia in Arabidopsis. The data resolve two monosome conformations and three disome configurations. These include monosomes with a vacant or occupied A-site and disomes that have collided or are separated by one or two codons. Pausing is prevalent at initiation, termination, and di-Proline codons. Di-Proline pauses do not trigger cotranslational decay but appear important in cotranslational protein processing. Brief hypoxia induces stalling of A-site vacant ribosomes at Aspartate codons, often coinciding with 5'P peaks, indicating that rate-limiting decoding can trigger cotranslational mRNA decay. Notably, actively transcribed and translated hypoxia-response mRNAs accumulate 1- to 2-codon-separated disomes and are actively degraded. Comparative analysis of footprints in the two species reveals ribosome conformations and codon-specific pausing can be conserved or lineage-specific, as exemplified by pausing at di-Prolines and on Conserved Peptide upstream ORFs. In sum, the stalling of ribosomes at specific codons, coupled with ribosome A-site occupancy and disome spacing, modulates protein production and cotranslational mRNA decay in plants.

Ribosomes

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

Yeast growth is controlled by the proportional scaling of mRNA and ribosome concentrations.

Despite growth being fundamental to all aspects of cell biology, we do not yet know its organizing principles in eukaryotic cells. Classic models derived from the bacteria E. coli posit that protein-synthesis rates are set by mass-action collisions between charged tRNAs produced by metabolic enzymes and mRNA-bound ribosomes. These models show that faster growth is achieved by simultaneously raising both ribosome content and peptide elongation speed. Here, we test if these models are valid for eukaryotes by combining single-molecule tracking, spike-in RNA sequencing, and proteomics in 15 carbon- and nitrogen-limited conditions using the budding yeast S. cerevisiae. Ribosome concentration increases linearly with growth rate, as in bacteria, but the peptide elongation speed remains constant (~9 amino acids/s) and charged tRNAs are not limiting. Total mRNA concentration rises in direct proportion to ribosomes, driven by enhanced RNA polymerase II occupancy of the genome. We show that a simple kinetic model of mRNA-ribosome binding predicts both the fraction of active ribosomes, the growth rate, and responses to transcriptional perturbations. Yeast accelerate growth by coordinately and proportionally co-up-regulating total mRNA and ribosome concentrations, not by speeding elongation. Taken together, our work establishes a new framework for eukaryotic growth control and resource allocation.

Journal Article