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Reannotation and extended community resources for the genome of the non-seed plant Physcomitrella patens provide insights into the evolution of plant gene structures and functions

BACKGROUND: The moss Physcomitrella patens as a model species provides an important reference for early-diverging lineages of plants and the release of the genome in 2008 opened the doors to genome-wide studies. The usability of a reference genome greatly depends on the quality of the annotation and...

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Autores principales: Zimmer, Andreas D, Lang, Daniel, Buchta, Karol, Rombauts, Stephane, Nishiyama, Tomoaki, Hasebe, Mitsuyasu, Van de Peer, Yves, Rensing, Stefan A, Reski, Ralf
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3729371/
https://www.ncbi.nlm.nih.gov/pubmed/23879659
http://dx.doi.org/10.1186/1471-2164-14-498
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author Zimmer, Andreas D
Lang, Daniel
Buchta, Karol
Rombauts, Stephane
Nishiyama, Tomoaki
Hasebe, Mitsuyasu
Van de Peer, Yves
Rensing, Stefan A
Reski, Ralf
author_facet Zimmer, Andreas D
Lang, Daniel
Buchta, Karol
Rombauts, Stephane
Nishiyama, Tomoaki
Hasebe, Mitsuyasu
Van de Peer, Yves
Rensing, Stefan A
Reski, Ralf
author_sort Zimmer, Andreas D
collection PubMed
description BACKGROUND: The moss Physcomitrella patens as a model species provides an important reference for early-diverging lineages of plants and the release of the genome in 2008 opened the doors to genome-wide studies. The usability of a reference genome greatly depends on the quality of the annotation and the availability of centralized community resources. Therefore, in the light of accumulating evidence for missing genes, fragmentary gene structures, false annotations and a low rate of functional annotations on the original release, we decided to improve the moss genome annotation. RESULTS: Here, we report the complete moss genome re-annotation (designated V1.6) incorporating the increased transcript availability from a multitude of developmental stages and tissue types. We demonstrate the utility of the improved P. patens genome annotation for comparative genomics and new extensions to the cosmoss.org resource as a central repository for this plant “flagship” genome. The structural annotation of 32,275 protein-coding genes results in 8387 additional loci including 1456 loci with known protein domains or homologs in Plantae. This is the first release to include information on transcript isoforms, suggesting alternative splicing events for at least 10.8% of the loci. Furthermore, this release now also provides information on non-protein-coding loci. Functional annotations were improved regarding quality and coverage, resulting in 58% annotated loci (previously: 41%) that comprise also 7200 additional loci with GO annotations. Access and manual curation of the functional and structural genome annotation is provided via the http://www.cosmoss.org model organism database. CONCLUSIONS: Comparative analysis of gene structure evolution along the green plant lineage provides novel insights, such as a comparatively high number of loci with 5’-UTR introns in the moss. Comparative analysis of functional annotations reveals expansions of moss house-keeping and metabolic genes and further possibly adaptive, lineage-specific expansions and gains including at least 13% orphan genes.
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spelling pubmed-37293712013-08-01 Reannotation and extended community resources for the genome of the non-seed plant Physcomitrella patens provide insights into the evolution of plant gene structures and functions Zimmer, Andreas D Lang, Daniel Buchta, Karol Rombauts, Stephane Nishiyama, Tomoaki Hasebe, Mitsuyasu Van de Peer, Yves Rensing, Stefan A Reski, Ralf BMC Genomics Research Article BACKGROUND: The moss Physcomitrella patens as a model species provides an important reference for early-diverging lineages of plants and the release of the genome in 2008 opened the doors to genome-wide studies. The usability of a reference genome greatly depends on the quality of the annotation and the availability of centralized community resources. Therefore, in the light of accumulating evidence for missing genes, fragmentary gene structures, false annotations and a low rate of functional annotations on the original release, we decided to improve the moss genome annotation. RESULTS: Here, we report the complete moss genome re-annotation (designated V1.6) incorporating the increased transcript availability from a multitude of developmental stages and tissue types. We demonstrate the utility of the improved P. patens genome annotation for comparative genomics and new extensions to the cosmoss.org resource as a central repository for this plant “flagship” genome. The structural annotation of 32,275 protein-coding genes results in 8387 additional loci including 1456 loci with known protein domains or homologs in Plantae. This is the first release to include information on transcript isoforms, suggesting alternative splicing events for at least 10.8% of the loci. Furthermore, this release now also provides information on non-protein-coding loci. Functional annotations were improved regarding quality and coverage, resulting in 58% annotated loci (previously: 41%) that comprise also 7200 additional loci with GO annotations. Access and manual curation of the functional and structural genome annotation is provided via the http://www.cosmoss.org model organism database. CONCLUSIONS: Comparative analysis of gene structure evolution along the green plant lineage provides novel insights, such as a comparatively high number of loci with 5’-UTR introns in the moss. Comparative analysis of functional annotations reveals expansions of moss house-keeping and metabolic genes and further possibly adaptive, lineage-specific expansions and gains including at least 13% orphan genes. BioMed Central 2013-07-23 /pmc/articles/PMC3729371/ /pubmed/23879659 http://dx.doi.org/10.1186/1471-2164-14-498 Text en Copyright © 2013 Zimmer et al.; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Zimmer, Andreas D
Lang, Daniel
Buchta, Karol
Rombauts, Stephane
Nishiyama, Tomoaki
Hasebe, Mitsuyasu
Van de Peer, Yves
Rensing, Stefan A
Reski, Ralf
Reannotation and extended community resources for the genome of the non-seed plant Physcomitrella patens provide insights into the evolution of plant gene structures and functions
title Reannotation and extended community resources for the genome of the non-seed plant Physcomitrella patens provide insights into the evolution of plant gene structures and functions
title_full Reannotation and extended community resources for the genome of the non-seed plant Physcomitrella patens provide insights into the evolution of plant gene structures and functions
title_fullStr Reannotation and extended community resources for the genome of the non-seed plant Physcomitrella patens provide insights into the evolution of plant gene structures and functions
title_full_unstemmed Reannotation and extended community resources for the genome of the non-seed plant Physcomitrella patens provide insights into the evolution of plant gene structures and functions
title_short Reannotation and extended community resources for the genome of the non-seed plant Physcomitrella patens provide insights into the evolution of plant gene structures and functions
title_sort reannotation and extended community resources for the genome of the non-seed plant physcomitrella patens provide insights into the evolution of plant gene structures and functions
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3729371/
https://www.ncbi.nlm.nih.gov/pubmed/23879659
http://dx.doi.org/10.1186/1471-2164-14-498
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