Cargando…

Mitochondrial Genome Evolution in Annelida—A Systematic Study on Conservative and Variable Gene Orders and the Factors Influencing its Evolution

The mitochondrial genomes of Bilateria are relatively conserved in their protein-coding, rRNA, and tRNA gene complement, but the order of these genes can range from very conserved to very variable depending on the taxon. The supposedly conserved gene order of Annelida has been used to support the pl...

Descripción completa

Detalles Bibliográficos
Autores principales: Struck, Torsten H, Golombek, Anja, Hoesel, Christoph, Dimitrov, Dimitar, Elgetany, Asmaa Haris
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10405356/
https://www.ncbi.nlm.nih.gov/pubmed/37083277
http://dx.doi.org/10.1093/sysbio/syad023
_version_ 1785085509296455680
author Struck, Torsten H
Golombek, Anja
Hoesel, Christoph
Dimitrov, Dimitar
Elgetany, Asmaa Haris
author_facet Struck, Torsten H
Golombek, Anja
Hoesel, Christoph
Dimitrov, Dimitar
Elgetany, Asmaa Haris
author_sort Struck, Torsten H
collection PubMed
description The mitochondrial genomes of Bilateria are relatively conserved in their protein-coding, rRNA, and tRNA gene complement, but the order of these genes can range from very conserved to very variable depending on the taxon. The supposedly conserved gene order of Annelida has been used to support the placement of some taxa within Annelida. Recently, authors have cast doubts on the conserved nature of the annelid gene order. Various factors may influence gene order variability including, among others, increased substitution rates, base composition differences, structure of noncoding regions, parasitism, living in extreme habitats, short generation times, and biomineralization. However, these analyses were neither done systematically nor based on well-established reference trees. Several focused on only a few of these factors and biological factors were usually explored ad-hoc without rigorous testing or correlation analyses. Herein, we investigated the variability and evolution of the annelid gene order and the factors that potentially influenced its evolution, using a comprehensive and systematic approach. The analyses were based on 170 genomes, including 33 previously unrepresented species. Our analyses included 706 different molecular properties, 20 life-history and ecological traits, and a reference tree corresponding to recent improvements concerning the annelid tree. The results showed that the gene order with and without tRNAs is generally conserved. However, individual taxa exhibit higher degrees of variability. None of the analyzed life-history and ecological traits explained the observed variability across mitochondrial gene orders. In contrast, the combination and interaction of the best-predicting factors for substitution rate and base composition explained up to 30% of the observed variability. Accordingly, correlation analyses of different molecular properties of the mitochondrial genomes showed an intricate network of direct and indirect correlations between the different molecular factors. Hence, gene order evolution seems to be driven by molecular evolutionary aspects rather than by life history or ecology. On the other hand, variability of the gene order does not predict if a taxon is difficult to place in molecular phylogenetic reconstructions using sequence data or not. We also discuss the molecular properties of annelid mitochondrial genomes considering canonical views on gene evolution and potential reasons why the canonical views do not always fit to the observed patterns without making some adjustments. [Annelida; compositional biases; ecology; gene order; life history; macroevolution; mitochondrial genomes; substitution rates.]
format Online
Article
Text
id pubmed-10405356
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Oxford University Press
record_format MEDLINE/PubMed
spelling pubmed-104053562023-08-08 Mitochondrial Genome Evolution in Annelida—A Systematic Study on Conservative and Variable Gene Orders and the Factors Influencing its Evolution Struck, Torsten H Golombek, Anja Hoesel, Christoph Dimitrov, Dimitar Elgetany, Asmaa Haris Syst Biol Regular Manuscripts The mitochondrial genomes of Bilateria are relatively conserved in their protein-coding, rRNA, and tRNA gene complement, but the order of these genes can range from very conserved to very variable depending on the taxon. The supposedly conserved gene order of Annelida has been used to support the placement of some taxa within Annelida. Recently, authors have cast doubts on the conserved nature of the annelid gene order. Various factors may influence gene order variability including, among others, increased substitution rates, base composition differences, structure of noncoding regions, parasitism, living in extreme habitats, short generation times, and biomineralization. However, these analyses were neither done systematically nor based on well-established reference trees. Several focused on only a few of these factors and biological factors were usually explored ad-hoc without rigorous testing or correlation analyses. Herein, we investigated the variability and evolution of the annelid gene order and the factors that potentially influenced its evolution, using a comprehensive and systematic approach. The analyses were based on 170 genomes, including 33 previously unrepresented species. Our analyses included 706 different molecular properties, 20 life-history and ecological traits, and a reference tree corresponding to recent improvements concerning the annelid tree. The results showed that the gene order with and without tRNAs is generally conserved. However, individual taxa exhibit higher degrees of variability. None of the analyzed life-history and ecological traits explained the observed variability across mitochondrial gene orders. In contrast, the combination and interaction of the best-predicting factors for substitution rate and base composition explained up to 30% of the observed variability. Accordingly, correlation analyses of different molecular properties of the mitochondrial genomes showed an intricate network of direct and indirect correlations between the different molecular factors. Hence, gene order evolution seems to be driven by molecular evolutionary aspects rather than by life history or ecology. On the other hand, variability of the gene order does not predict if a taxon is difficult to place in molecular phylogenetic reconstructions using sequence data or not. We also discuss the molecular properties of annelid mitochondrial genomes considering canonical views on gene evolution and potential reasons why the canonical views do not always fit to the observed patterns without making some adjustments. [Annelida; compositional biases; ecology; gene order; life history; macroevolution; mitochondrial genomes; substitution rates.] Oxford University Press 2023-04-21 /pmc/articles/PMC10405356/ /pubmed/37083277 http://dx.doi.org/10.1093/sysbio/syad023 Text en © The Author(s) 2023. Published by Oxford University Press on behalf of the Society of Systematic Biologists. https://creativecommons.org/licenses/by-nc/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution-NonCommercial License (https://creativecommons.org/licenses/by-nc/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact journals.permissions@oup.com
spellingShingle Regular Manuscripts
Struck, Torsten H
Golombek, Anja
Hoesel, Christoph
Dimitrov, Dimitar
Elgetany, Asmaa Haris
Mitochondrial Genome Evolution in Annelida—A Systematic Study on Conservative and Variable Gene Orders and the Factors Influencing its Evolution
title Mitochondrial Genome Evolution in Annelida—A Systematic Study on Conservative and Variable Gene Orders and the Factors Influencing its Evolution
title_full Mitochondrial Genome Evolution in Annelida—A Systematic Study on Conservative and Variable Gene Orders and the Factors Influencing its Evolution
title_fullStr Mitochondrial Genome Evolution in Annelida—A Systematic Study on Conservative and Variable Gene Orders and the Factors Influencing its Evolution
title_full_unstemmed Mitochondrial Genome Evolution in Annelida—A Systematic Study on Conservative and Variable Gene Orders and the Factors Influencing its Evolution
title_short Mitochondrial Genome Evolution in Annelida—A Systematic Study on Conservative and Variable Gene Orders and the Factors Influencing its Evolution
title_sort mitochondrial genome evolution in annelida—a systematic study on conservative and variable gene orders and the factors influencing its evolution
topic Regular Manuscripts
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10405356/
https://www.ncbi.nlm.nih.gov/pubmed/37083277
http://dx.doi.org/10.1093/sysbio/syad023
work_keys_str_mv AT strucktorstenh mitochondrialgenomeevolutioninannelidaasystematicstudyonconservativeandvariablegeneordersandthefactorsinfluencingitsevolution
AT golombekanja mitochondrialgenomeevolutioninannelidaasystematicstudyonconservativeandvariablegeneordersandthefactorsinfluencingitsevolution
AT hoeselchristoph mitochondrialgenomeevolutioninannelidaasystematicstudyonconservativeandvariablegeneordersandthefactorsinfluencingitsevolution
AT dimitrovdimitar mitochondrialgenomeevolutioninannelidaasystematicstudyonconservativeandvariablegeneordersandthefactorsinfluencingitsevolution
AT elgetanyasmaaharis mitochondrialgenomeevolutioninannelidaasystematicstudyonconservativeandvariablegeneordersandthefactorsinfluencingitsevolution