Folding free energies of 5'-UTRs impact post-transcriptional regulation on a genomic scale in yeast.
Using high-throughput technologies, abundances and other features of genes and proteins have been measured on a genome-wide scale in Saccharomyces cerevisiae. In contrast, secondary structure in 5'-untranslated regions (UTRs) of mRNA has only been investigated for a limited number of genes. Her...
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doaj-d5bdad87f5d849e39c133d77d3a6591f2020-11-25T01:32:26ZengPublic Library of Science (PLoS)PLoS Computational Biology1553-734X1553-73582005-12-0117e7210.1371/journal.pcbi.0010072Folding free energies of 5'-UTRs impact post-transcriptional regulation on a genomic scale in yeast.Markus RingnérMorten KroghUsing high-throughput technologies, abundances and other features of genes and proteins have been measured on a genome-wide scale in Saccharomyces cerevisiae. In contrast, secondary structure in 5'-untranslated regions (UTRs) of mRNA has only been investigated for a limited number of genes. Here, the aim is to study genome-wide regulatory effects of mRNA 5'-UTR folding free energies. We performed computations of secondary structures in 5'-UTRs and their folding free energies for all verified genes in S. cerevisiae. We found significant correlations between folding free energies of 5'-UTRs and various transcript features measured in genome-wide studies of yeast. In particular, mRNAs with weakly folded 5'-UTRs have higher translation rates, higher abundances of the corresponding proteins, longer half-lives, and higher numbers of transcripts, and are upregulated after heat shock. Furthermore, 5'-UTRs have significantly higher folding free energies than other genomic regions and randomized sequences. We also found a positive correlation between transcript half-life and ribosome occupancy that is more pronounced for short-lived transcripts, which supports a picture of competition between translation and degradation. Among the genes with strongly folded 5'-UTRs, there is a huge overrepresentation of uncharacterized open reading frames. Based on our analysis, we conclude that (i) there is a widespread bias for 5'-UTRs to be weakly folded, (ii) folding free energies of 5'-UTRs are correlated with mRNA translation and turnover on a genomic scale, and (iii) transcripts with strongly folded 5'-UTRs are often rare and hard to find experimentally.http://europepmc.org/articles/PMC1309706?pdf=render |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Markus Ringnér Morten Krogh |
spellingShingle |
Markus Ringnér Morten Krogh Folding free energies of 5'-UTRs impact post-transcriptional regulation on a genomic scale in yeast. PLoS Computational Biology |
author_facet |
Markus Ringnér Morten Krogh |
author_sort |
Markus Ringnér |
title |
Folding free energies of 5'-UTRs impact post-transcriptional regulation on a genomic scale in yeast. |
title_short |
Folding free energies of 5'-UTRs impact post-transcriptional regulation on a genomic scale in yeast. |
title_full |
Folding free energies of 5'-UTRs impact post-transcriptional regulation on a genomic scale in yeast. |
title_fullStr |
Folding free energies of 5'-UTRs impact post-transcriptional regulation on a genomic scale in yeast. |
title_full_unstemmed |
Folding free energies of 5'-UTRs impact post-transcriptional regulation on a genomic scale in yeast. |
title_sort |
folding free energies of 5'-utrs impact post-transcriptional regulation on a genomic scale in yeast. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS Computational Biology |
issn |
1553-734X 1553-7358 |
publishDate |
2005-12-01 |
description |
Using high-throughput technologies, abundances and other features of genes and proteins have been measured on a genome-wide scale in Saccharomyces cerevisiae. In contrast, secondary structure in 5'-untranslated regions (UTRs) of mRNA has only been investigated for a limited number of genes. Here, the aim is to study genome-wide regulatory effects of mRNA 5'-UTR folding free energies. We performed computations of secondary structures in 5'-UTRs and their folding free energies for all verified genes in S. cerevisiae. We found significant correlations between folding free energies of 5'-UTRs and various transcript features measured in genome-wide studies of yeast. In particular, mRNAs with weakly folded 5'-UTRs have higher translation rates, higher abundances of the corresponding proteins, longer half-lives, and higher numbers of transcripts, and are upregulated after heat shock. Furthermore, 5'-UTRs have significantly higher folding free energies than other genomic regions and randomized sequences. We also found a positive correlation between transcript half-life and ribosome occupancy that is more pronounced for short-lived transcripts, which supports a picture of competition between translation and degradation. Among the genes with strongly folded 5'-UTRs, there is a huge overrepresentation of uncharacterized open reading frames. Based on our analysis, we conclude that (i) there is a widespread bias for 5'-UTRs to be weakly folded, (ii) folding free energies of 5'-UTRs are correlated with mRNA translation and turnover on a genomic scale, and (iii) transcripts with strongly folded 5'-UTRs are often rare and hard to find experimentally. |
url |
http://europepmc.org/articles/PMC1309706?pdf=render |
work_keys_str_mv |
AT markusringner foldingfreeenergiesof5utrsimpactposttranscriptionalregulationonagenomicscaleinyeast AT mortenkrogh foldingfreeenergiesof5utrsimpactposttranscriptionalregulationonagenomicscaleinyeast |
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