Cargando…

Gene Content Evolution in Discobid Mitochondria Deduced from the Phylogenetic Position and Complete Mitochondrial Genome of Tsukubamonas globosa

The unicellular eukaryotic assemblage Discoba (Excavata) comprises four lineages: the Heterolobosea, Euglenozoa, Jakobida, and Tsukubamonadida. Discoba has been considered as a key assemblage for understanding the early evolution of mitochondrial (mt) genomes, as jakobids retain the most gene-rich (...

Descripción completa

Detalles Bibliográficos
Autores principales: Kamikawa, Ryoma, Kolisko, Martin, Nishimura, Yuki, Yabuki, Akinori, Brown, Matthew W., Ishikawa, Sohta A., Ishida, Ken-ichiro, Roger, Andrew J., Hashimoto, Tetsuo, Inagaki, Yuji
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3942025/
https://www.ncbi.nlm.nih.gov/pubmed/24448982
http://dx.doi.org/10.1093/gbe/evu015
_version_ 1782306012948070400
author Kamikawa, Ryoma
Kolisko, Martin
Nishimura, Yuki
Yabuki, Akinori
Brown, Matthew W.
Ishikawa, Sohta A.
Ishida, Ken-ichiro
Roger, Andrew J.
Hashimoto, Tetsuo
Inagaki, Yuji
author_facet Kamikawa, Ryoma
Kolisko, Martin
Nishimura, Yuki
Yabuki, Akinori
Brown, Matthew W.
Ishikawa, Sohta A.
Ishida, Ken-ichiro
Roger, Andrew J.
Hashimoto, Tetsuo
Inagaki, Yuji
author_sort Kamikawa, Ryoma
collection PubMed
description The unicellular eukaryotic assemblage Discoba (Excavata) comprises four lineages: the Heterolobosea, Euglenozoa, Jakobida, and Tsukubamonadida. Discoba has been considered as a key assemblage for understanding the early evolution of mitochondrial (mt) genomes, as jakobids retain the most gene-rich (i.e., primitive) genomes compared with any other eukaryotes determined to date. However, to date, mt genome sequences have been completed for only a few groups within Discoba, including jakobids, two closely related heteroloboseans, and kinetoplastid euglenozoans. The Tsukubamonadida is the least studied lineage, as the order was only recently established with the description of a sole representative species, Tsukubamonas globosa. The evolutionary relationship between T. globosa and other discobids has yet to be resolved, and no mt genome data are available for this particular organism. Here, we use a “phylogenomic” approach to resolve the relationship between T. globosa, heteroloboseans, euglenozoans, and jakobids. In addition, we have characterized the mt genome of T. globosa (48,463 bp in length), which encodes 52 putative protein-coding and 29 RNA genes. By mapping the gene repertoires of discobid mt genomes onto the well-resolved Discoba tree, we model gene loss events during the evolution of discobid mt genomes.
format Online
Article
Text
id pubmed-3942025
institution National Center for Biotechnology Information
language English
publishDate 2014
publisher Oxford University Press
record_format MEDLINE/PubMed
spelling pubmed-39420252014-03-04 Gene Content Evolution in Discobid Mitochondria Deduced from the Phylogenetic Position and Complete Mitochondrial Genome of Tsukubamonas globosa Kamikawa, Ryoma Kolisko, Martin Nishimura, Yuki Yabuki, Akinori Brown, Matthew W. Ishikawa, Sohta A. Ishida, Ken-ichiro Roger, Andrew J. Hashimoto, Tetsuo Inagaki, Yuji Genome Biol Evol The unicellular eukaryotic assemblage Discoba (Excavata) comprises four lineages: the Heterolobosea, Euglenozoa, Jakobida, and Tsukubamonadida. Discoba has been considered as a key assemblage for understanding the early evolution of mitochondrial (mt) genomes, as jakobids retain the most gene-rich (i.e., primitive) genomes compared with any other eukaryotes determined to date. However, to date, mt genome sequences have been completed for only a few groups within Discoba, including jakobids, two closely related heteroloboseans, and kinetoplastid euglenozoans. The Tsukubamonadida is the least studied lineage, as the order was only recently established with the description of a sole representative species, Tsukubamonas globosa. The evolutionary relationship between T. globosa and other discobids has yet to be resolved, and no mt genome data are available for this particular organism. Here, we use a “phylogenomic” approach to resolve the relationship between T. globosa, heteroloboseans, euglenozoans, and jakobids. In addition, we have characterized the mt genome of T. globosa (48,463 bp in length), which encodes 52 putative protein-coding and 29 RNA genes. By mapping the gene repertoires of discobid mt genomes onto the well-resolved Discoba tree, we model gene loss events during the evolution of discobid mt genomes. Oxford University Press 2014-01-21 /pmc/articles/PMC3942025/ /pubmed/24448982 http://dx.doi.org/10.1093/gbe/evu015 Text en © The Author(s) 2014. Published by Oxford University Press on behalf of the Society for Molecular Biology and Evolution. http://creativecommons.org/licenses/by/3.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/3.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Kamikawa, Ryoma
Kolisko, Martin
Nishimura, Yuki
Yabuki, Akinori
Brown, Matthew W.
Ishikawa, Sohta A.
Ishida, Ken-ichiro
Roger, Andrew J.
Hashimoto, Tetsuo
Inagaki, Yuji
Gene Content Evolution in Discobid Mitochondria Deduced from the Phylogenetic Position and Complete Mitochondrial Genome of Tsukubamonas globosa
title Gene Content Evolution in Discobid Mitochondria Deduced from the Phylogenetic Position and Complete Mitochondrial Genome of Tsukubamonas globosa
title_full Gene Content Evolution in Discobid Mitochondria Deduced from the Phylogenetic Position and Complete Mitochondrial Genome of Tsukubamonas globosa
title_fullStr Gene Content Evolution in Discobid Mitochondria Deduced from the Phylogenetic Position and Complete Mitochondrial Genome of Tsukubamonas globosa
title_full_unstemmed Gene Content Evolution in Discobid Mitochondria Deduced from the Phylogenetic Position and Complete Mitochondrial Genome of Tsukubamonas globosa
title_short Gene Content Evolution in Discobid Mitochondria Deduced from the Phylogenetic Position and Complete Mitochondrial Genome of Tsukubamonas globosa
title_sort gene content evolution in discobid mitochondria deduced from the phylogenetic position and complete mitochondrial genome of tsukubamonas globosa
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3942025/
https://www.ncbi.nlm.nih.gov/pubmed/24448982
http://dx.doi.org/10.1093/gbe/evu015
work_keys_str_mv AT kamikawaryoma genecontentevolutionindiscobidmitochondriadeducedfromthephylogeneticpositionandcompletemitochondrialgenomeoftsukubamonasglobosa
AT koliskomartin genecontentevolutionindiscobidmitochondriadeducedfromthephylogeneticpositionandcompletemitochondrialgenomeoftsukubamonasglobosa
AT nishimurayuki genecontentevolutionindiscobidmitochondriadeducedfromthephylogeneticpositionandcompletemitochondrialgenomeoftsukubamonasglobosa
AT yabukiakinori genecontentevolutionindiscobidmitochondriadeducedfromthephylogeneticpositionandcompletemitochondrialgenomeoftsukubamonasglobosa
AT brownmattheww genecontentevolutionindiscobidmitochondriadeducedfromthephylogeneticpositionandcompletemitochondrialgenomeoftsukubamonasglobosa
AT ishikawasohtaa genecontentevolutionindiscobidmitochondriadeducedfromthephylogeneticpositionandcompletemitochondrialgenomeoftsukubamonasglobosa
AT ishidakenichiro genecontentevolutionindiscobidmitochondriadeducedfromthephylogeneticpositionandcompletemitochondrialgenomeoftsukubamonasglobosa
AT rogerandrewj genecontentevolutionindiscobidmitochondriadeducedfromthephylogeneticpositionandcompletemitochondrialgenomeoftsukubamonasglobosa
AT hashimototetsuo genecontentevolutionindiscobidmitochondriadeducedfromthephylogeneticpositionandcompletemitochondrialgenomeoftsukubamonasglobosa
AT inagakiyuji genecontentevolutionindiscobidmitochondriadeducedfromthephylogeneticpositionandcompletemitochondrialgenomeoftsukubamonasglobosa