Peptides encoded by short ORFs control development and define a new eukaryotic gene family.
Despite recent advances in developmental biology, and the sequencing and annotation of genomes, key questions regarding the organisation of cells into embryos remain. One possibility is that uncharacterised genes having nonstandard coding arrangements and functions could provide some of the answers....
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2007-05-01
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doaj-c2e935e9df354f75a79934a634af381b2021-07-02T05:19:50ZengPublic Library of Science (PLoS)PLoS Biology1544-91731545-78852007-05-0155e10610.1371/journal.pbio.0050106Peptides encoded by short ORFs control development and define a new eukaryotic gene family.Máximo Ibo GalindoJosé Ignacio PueyoSylvaine FouixSarah Anne BishopJuan Pablo CousoDespite recent advances in developmental biology, and the sequencing and annotation of genomes, key questions regarding the organisation of cells into embryos remain. One possibility is that uncharacterised genes having nonstandard coding arrangements and functions could provide some of the answers. Here we present the characterisation of tarsal-less (tal), a new type of noncanonical gene that had been previously classified as a putative noncoding RNA. We show that tal controls gene expression and tissue folding in Drosophila, thus acting as a link between patterning and morphogenesis. tal function is mediated by several 33-nucleotide-long open reading frames (ORFs), which are translated into 11-amino-acid-long peptides. These are the shortest functional ORFs described to date, and therefore tal defines two novel paradigms in eukaryotic coding genes: the existence of short, unprocessed peptides with key biological functions, and their arrangement in polycistronic messengers. Our discovery of tal-related short ORFs in other species defines an ancient and noncanonical gene family in metazoans that represents a new class of eukaryotic genes. Our results open a new avenue for the annotation and functional analysis of genes and sequenced genomes, in which thousands of short ORFs are still uncharacterised.http://europepmc.org/articles/PMC1852585?pdf=render |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Máximo Ibo Galindo José Ignacio Pueyo Sylvaine Fouix Sarah Anne Bishop Juan Pablo Couso |
spellingShingle |
Máximo Ibo Galindo José Ignacio Pueyo Sylvaine Fouix Sarah Anne Bishop Juan Pablo Couso Peptides encoded by short ORFs control development and define a new eukaryotic gene family. PLoS Biology |
author_facet |
Máximo Ibo Galindo José Ignacio Pueyo Sylvaine Fouix Sarah Anne Bishop Juan Pablo Couso |
author_sort |
Máximo Ibo Galindo |
title |
Peptides encoded by short ORFs control development and define a new eukaryotic gene family. |
title_short |
Peptides encoded by short ORFs control development and define a new eukaryotic gene family. |
title_full |
Peptides encoded by short ORFs control development and define a new eukaryotic gene family. |
title_fullStr |
Peptides encoded by short ORFs control development and define a new eukaryotic gene family. |
title_full_unstemmed |
Peptides encoded by short ORFs control development and define a new eukaryotic gene family. |
title_sort |
peptides encoded by short orfs control development and define a new eukaryotic gene family. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS Biology |
issn |
1544-9173 1545-7885 |
publishDate |
2007-05-01 |
description |
Despite recent advances in developmental biology, and the sequencing and annotation of genomes, key questions regarding the organisation of cells into embryos remain. One possibility is that uncharacterised genes having nonstandard coding arrangements and functions could provide some of the answers. Here we present the characterisation of tarsal-less (tal), a new type of noncanonical gene that had been previously classified as a putative noncoding RNA. We show that tal controls gene expression and tissue folding in Drosophila, thus acting as a link between patterning and morphogenesis. tal function is mediated by several 33-nucleotide-long open reading frames (ORFs), which are translated into 11-amino-acid-long peptides. These are the shortest functional ORFs described to date, and therefore tal defines two novel paradigms in eukaryotic coding genes: the existence of short, unprocessed peptides with key biological functions, and their arrangement in polycistronic messengers. Our discovery of tal-related short ORFs in other species defines an ancient and noncanonical gene family in metazoans that represents a new class of eukaryotic genes. Our results open a new avenue for the annotation and functional analysis of genes and sequenced genomes, in which thousands of short ORFs are still uncharacterised. |
url |
http://europepmc.org/articles/PMC1852585?pdf=render |
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