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Biology subjects

Carey, L.

Publications and source records attributed to Carey, L..

3 recordsLinked to original sources

Poor codon optimality is a signal to degrade transcripts with frameshifts

Living organisms are error-prone. Every second a single human cell produces over 100 transcripts with a substitution, frameshift or splicing error. Multiple mRNA quality control pathways exist to degrade these transcripts. Many of these pathways involve co-translational regulation of mRNA stability, such as nonsense mediated decay (NMD) and reduced stability of transcripts with suboptimal codon usage. Recent work has shown the existence of a genetic link between NMD and codon-usage mediated mRNA decay. Here we present new computational evidence that, because the codons following most frameshift errors are suboptimal, removal of mRNAs with such errors may be mediated by degradation of mRNAs with sub-optimal codons. Thus, most transcripts that contain frameshifts are subject to two modes of degradation.\n\nAuthor summaryFrameshifting errors are common and mRNA quality control pathways, such as nonsense-mediated decay (NMD), exist to degrade these aberrant transcripts. Recent work has shown the existence of a genetic link between NMD and codon-usage mediated mRNA decay. Here we present computational evidence that these pathways are synergic for removing frameshifts.

genomics

Experimental assay of a fitness landscape on a macroevolutionary scale

Characterizing the fitness landscape, a representation of fitness for a large set of genotypes, is key to understanding how genetic information is interpreted to create functional organisms. Here we determined the evolutionarily-relevant segment of the fitness landscape of His3, a gene coding for an enzyme in the histidine synthesis pathway, focusing on combinations of amino acid states found at orthologous sites of extant species. Just 15% of amino acids found in yeast His3 orthologues were always neutral while the impact on fitness of the remaining 85% depended on the genetic background. Furthermore, at 67% of sites, substitutions are under sign epistasis, having both strongly positive and negative effect in different genetic backgrounds. 46% of sites were under reciprocal sign epistasis. Sign epistasis affected few genotypes but involved interaction of multiple sites, shaping a rugged fitness landscape in which many of the shortest paths between highly fit genotypes are inaccessible.

evolutionary biology

Promoter activity buffering reduces the fitness cost of misregulation.

O_FIG_DISPLAY_L [Figure 1] M_FIG_DISPLAY C_FIG_DISPLAY\n\nIn BriefSystematic promoter replacement reveals that coding sequences and 3ends of genes play and active role in buffering cells from fitness defects due to misregulation.\n\nHighlightsO_LIThe TF dose-response curve -- how gene expression changes as a function of TF concentration -- is encoded throughout the gene, not only in the promoter. Genes with the same promoter have different TF DRCs.\nC_LIO_LIA coupled experimental system and mathematical model quantifies the intrinsic ability of genes to buffer or amplify promoter activity.\nC_LIO_LIPromoter activity buffering reduces the effect of misregulation on fitness.\nC_LI\n\nCells regulate gene expression by changing the concentration and activity of transcription factors (TFs). The response of each gene to changes in TF activity is generally assumed to be encoded in the promoter. Here we show that, even when the promoter itself remains constant, each gene has a unique TF dose response curve. Genes have an intrinsic ability to either buffer or amplify the effects of high promoter activity. We present a coupled mathematical model and experimental system for quantifying this property. Promoter activity buffering can be encoded by sequences in both the open reading frame and 3end of genes, and can be implemented by both autoregulatory feedback loops and by titration of limiting trans regulators. We show experimentally that promoter activity buffering insulates cells from fitness defects due to misexpression. The response of genes to changes in [TF] is encoded by sequences outside of the promoter, and this effect can either insulate or amplify the effects of aneuploidy and misregulation on organismal fitness.

systems biology