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Comparative Repeat Profiling of Two Closely Related Conifers (Larix decidua and Larix kaempferi) Reveals High Genome Similarity With Only Few Fast-Evolving Satellite DNAs

In eukaryotic genomes, cycles of repeat expansion and removal lead to large-scale genomic changes and propel organisms forward in evolution. However, in conifers, active repeat removal is thought to be limited, leading to expansions of their genomes, mostly exceeding 10 giga base pairs. As a result,...

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Autores principales: Heitkam, Tony, Schulte, Luise, Weber, Beatrice, Liedtke, Susan, Breitenbach, Sarah, Kögler, Anja, Morgenstern, Kristin, Brückner, Marie, Tröber, Ute, Wolf, Heino, Krabel, Doris, Schmidt, Thomas
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8312256/
https://www.ncbi.nlm.nih.gov/pubmed/34322154
http://dx.doi.org/10.3389/fgene.2021.683668
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author Heitkam, Tony
Schulte, Luise
Weber, Beatrice
Liedtke, Susan
Breitenbach, Sarah
Kögler, Anja
Morgenstern, Kristin
Brückner, Marie
Tröber, Ute
Wolf, Heino
Krabel, Doris
Schmidt, Thomas
author_facet Heitkam, Tony
Schulte, Luise
Weber, Beatrice
Liedtke, Susan
Breitenbach, Sarah
Kögler, Anja
Morgenstern, Kristin
Brückner, Marie
Tröber, Ute
Wolf, Heino
Krabel, Doris
Schmidt, Thomas
author_sort Heitkam, Tony
collection PubMed
description In eukaryotic genomes, cycles of repeat expansion and removal lead to large-scale genomic changes and propel organisms forward in evolution. However, in conifers, active repeat removal is thought to be limited, leading to expansions of their genomes, mostly exceeding 10 giga base pairs. As a result, conifer genomes are largely littered with fragmented and decayed repeats. Here, we aim to investigate how the repeat landscapes of two related conifers have diverged, given the conifers’ accumulative genome evolution mode. For this, we applied low-coverage sequencing and read clustering to the genomes of European and Japanese larch, Larix decidua (Lamb.) Carrière and Larix kaempferi (Mill.), that arose from a common ancestor, but are now geographically isolated. We found that both Larix species harbored largely similar repeat landscapes, especially regarding the transposable element content. To pin down possible genomic changes, we focused on the repeat class with the fastest sequence turnover: satellite DNAs (satDNAs). Using comparative bioinformatics, Southern, and fluorescent in situ hybridization, we reveal the satDNAs’ organizational patterns, their abundances, and chromosomal locations. Four out of the five identified satDNAs are widespread in the Larix genus, with two even present in the more distantly related Pseudotsuga and Abies genera. Unexpectedly, the EulaSat3 family was restricted to L. decidua and absent from L. kaempferi, indicating its evolutionarily young age. Taken together, our results exemplify how the accumulative genome evolution of conifers may limit the overall divergence of repeats after speciation, producing only few repeat-induced genomic novelties.
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spelling pubmed-83122562021-07-27 Comparative Repeat Profiling of Two Closely Related Conifers (Larix decidua and Larix kaempferi) Reveals High Genome Similarity With Only Few Fast-Evolving Satellite DNAs Heitkam, Tony Schulte, Luise Weber, Beatrice Liedtke, Susan Breitenbach, Sarah Kögler, Anja Morgenstern, Kristin Brückner, Marie Tröber, Ute Wolf, Heino Krabel, Doris Schmidt, Thomas Front Genet Genetics In eukaryotic genomes, cycles of repeat expansion and removal lead to large-scale genomic changes and propel organisms forward in evolution. However, in conifers, active repeat removal is thought to be limited, leading to expansions of their genomes, mostly exceeding 10 giga base pairs. As a result, conifer genomes are largely littered with fragmented and decayed repeats. Here, we aim to investigate how the repeat landscapes of two related conifers have diverged, given the conifers’ accumulative genome evolution mode. For this, we applied low-coverage sequencing and read clustering to the genomes of European and Japanese larch, Larix decidua (Lamb.) Carrière and Larix kaempferi (Mill.), that arose from a common ancestor, but are now geographically isolated. We found that both Larix species harbored largely similar repeat landscapes, especially regarding the transposable element content. To pin down possible genomic changes, we focused on the repeat class with the fastest sequence turnover: satellite DNAs (satDNAs). Using comparative bioinformatics, Southern, and fluorescent in situ hybridization, we reveal the satDNAs’ organizational patterns, their abundances, and chromosomal locations. Four out of the five identified satDNAs are widespread in the Larix genus, with two even present in the more distantly related Pseudotsuga and Abies genera. Unexpectedly, the EulaSat3 family was restricted to L. decidua and absent from L. kaempferi, indicating its evolutionarily young age. Taken together, our results exemplify how the accumulative genome evolution of conifers may limit the overall divergence of repeats after speciation, producing only few repeat-induced genomic novelties. Frontiers Media S.A. 2021-07-12 /pmc/articles/PMC8312256/ /pubmed/34322154 http://dx.doi.org/10.3389/fgene.2021.683668 Text en Copyright © 2021 Heitkam, Schulte, Weber, Liedtke, Breitenbach, Kögler, Morgenstern, Brückner, Tröber, Wolf, Krabel and Schmidt. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Genetics
Heitkam, Tony
Schulte, Luise
Weber, Beatrice
Liedtke, Susan
Breitenbach, Sarah
Kögler, Anja
Morgenstern, Kristin
Brückner, Marie
Tröber, Ute
Wolf, Heino
Krabel, Doris
Schmidt, Thomas
Comparative Repeat Profiling of Two Closely Related Conifers (Larix decidua and Larix kaempferi) Reveals High Genome Similarity With Only Few Fast-Evolving Satellite DNAs
title Comparative Repeat Profiling of Two Closely Related Conifers (Larix decidua and Larix kaempferi) Reveals High Genome Similarity With Only Few Fast-Evolving Satellite DNAs
title_full Comparative Repeat Profiling of Two Closely Related Conifers (Larix decidua and Larix kaempferi) Reveals High Genome Similarity With Only Few Fast-Evolving Satellite DNAs
title_fullStr Comparative Repeat Profiling of Two Closely Related Conifers (Larix decidua and Larix kaempferi) Reveals High Genome Similarity With Only Few Fast-Evolving Satellite DNAs
title_full_unstemmed Comparative Repeat Profiling of Two Closely Related Conifers (Larix decidua and Larix kaempferi) Reveals High Genome Similarity With Only Few Fast-Evolving Satellite DNAs
title_short Comparative Repeat Profiling of Two Closely Related Conifers (Larix decidua and Larix kaempferi) Reveals High Genome Similarity With Only Few Fast-Evolving Satellite DNAs
title_sort comparative repeat profiling of two closely related conifers (larix decidua and larix kaempferi) reveals high genome similarity with only few fast-evolving satellite dnas
topic Genetics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8312256/
https://www.ncbi.nlm.nih.gov/pubmed/34322154
http://dx.doi.org/10.3389/fgene.2021.683668
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