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Extensive Copy Number Variation Explains Genome Size Variation in the Unicellular Zygnematophycean Alga, Closterium peracerosum–strigosum–littorale Complex

Genome sizes are known to vary within and among closely related species, but the knowledge about genomic factors contributing to the variation and their impacts on gene functions is limited to only a small number of species. This study identified a more than 2-fold heritable genome size variation am...

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Autores principales: Kawaguchi, Yawako W, Tsuchikane, Yuki, Tanaka, Keisuke, Taji, Teruaki, Suzuki, Yutaka, Toyoda, Atsushi, Ito, Motomi, Watano, Yasuyuki, Nishiyama, Tomoaki, Sekimoto, Hiroyuki, Tsuchimatsu, Takashi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10407611/
https://www.ncbi.nlm.nih.gov/pubmed/37348049
http://dx.doi.org/10.1093/gbe/evad115
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author Kawaguchi, Yawako W
Tsuchikane, Yuki
Tanaka, Keisuke
Taji, Teruaki
Suzuki, Yutaka
Toyoda, Atsushi
Ito, Motomi
Watano, Yasuyuki
Nishiyama, Tomoaki
Sekimoto, Hiroyuki
Tsuchimatsu, Takashi
author_facet Kawaguchi, Yawako W
Tsuchikane, Yuki
Tanaka, Keisuke
Taji, Teruaki
Suzuki, Yutaka
Toyoda, Atsushi
Ito, Motomi
Watano, Yasuyuki
Nishiyama, Tomoaki
Sekimoto, Hiroyuki
Tsuchimatsu, Takashi
author_sort Kawaguchi, Yawako W
collection PubMed
description Genome sizes are known to vary within and among closely related species, but the knowledge about genomic factors contributing to the variation and their impacts on gene functions is limited to only a small number of species. This study identified a more than 2-fold heritable genome size variation among the unicellular Zygnematophycean alga, Closterium peracerosum–strigosum–littorale (C. psl.) complex, based on short-read sequencing analysis of 22 natural strains and F(1) segregation analysis. Six de novo assembled genomes revealed that genome size variation is largely attributable to genome-wide copy number variation (CNV) among strains rather than mating type-linked genomic regions or specific repeat sequences such as rDNA. Notably, about 30% of genes showed CNV even between strains that can mate with each other. Transcriptome and gene ontology analysis demonstrated that CNV is distributed nonrandomly in terms of gene functions, such that CNV was more often observed in the gene set with stage-specific expression. Furthermore, in about 30% of these genes with CNV, the expression level does not increase proportionally with the gene copy number, suggesting presence of dosage compensation, which was overrepresented in genes involved in basic biological functions, such as translation. Nonrandom patterns in gene duplications and corresponding expression changes in terms of gene functions may contribute to maintaining the high level of CNV associated with extensive genome size variation in the C. psl. complex, despite its possible detrimental effects.
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spelling pubmed-104076112023-08-09 Extensive Copy Number Variation Explains Genome Size Variation in the Unicellular Zygnematophycean Alga, Closterium peracerosum–strigosum–littorale Complex Kawaguchi, Yawako W Tsuchikane, Yuki Tanaka, Keisuke Taji, Teruaki Suzuki, Yutaka Toyoda, Atsushi Ito, Motomi Watano, Yasuyuki Nishiyama, Tomoaki Sekimoto, Hiroyuki Tsuchimatsu, Takashi Genome Biol Evol Article Genome sizes are known to vary within and among closely related species, but the knowledge about genomic factors contributing to the variation and their impacts on gene functions is limited to only a small number of species. This study identified a more than 2-fold heritable genome size variation among the unicellular Zygnematophycean alga, Closterium peracerosum–strigosum–littorale (C. psl.) complex, based on short-read sequencing analysis of 22 natural strains and F(1) segregation analysis. Six de novo assembled genomes revealed that genome size variation is largely attributable to genome-wide copy number variation (CNV) among strains rather than mating type-linked genomic regions or specific repeat sequences such as rDNA. Notably, about 30% of genes showed CNV even between strains that can mate with each other. Transcriptome and gene ontology analysis demonstrated that CNV is distributed nonrandomly in terms of gene functions, such that CNV was more often observed in the gene set with stage-specific expression. Furthermore, in about 30% of these genes with CNV, the expression level does not increase proportionally with the gene copy number, suggesting presence of dosage compensation, which was overrepresented in genes involved in basic biological functions, such as translation. Nonrandom patterns in gene duplications and corresponding expression changes in terms of gene functions may contribute to maintaining the high level of CNV associated with extensive genome size variation in the C. psl. complex, despite its possible detrimental effects. Oxford University Press 2023-06-22 /pmc/articles/PMC10407611/ /pubmed/37348049 http://dx.doi.org/10.1093/gbe/evad115 Text en © The Author(s) 2023. Published by Oxford University Press on behalf of Society for Molecular Biology and Evolution. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Article
Kawaguchi, Yawako W
Tsuchikane, Yuki
Tanaka, Keisuke
Taji, Teruaki
Suzuki, Yutaka
Toyoda, Atsushi
Ito, Motomi
Watano, Yasuyuki
Nishiyama, Tomoaki
Sekimoto, Hiroyuki
Tsuchimatsu, Takashi
Extensive Copy Number Variation Explains Genome Size Variation in the Unicellular Zygnematophycean Alga, Closterium peracerosum–strigosum–littorale Complex
title Extensive Copy Number Variation Explains Genome Size Variation in the Unicellular Zygnematophycean Alga, Closterium peracerosum–strigosum–littorale Complex
title_full Extensive Copy Number Variation Explains Genome Size Variation in the Unicellular Zygnematophycean Alga, Closterium peracerosum–strigosum–littorale Complex
title_fullStr Extensive Copy Number Variation Explains Genome Size Variation in the Unicellular Zygnematophycean Alga, Closterium peracerosum–strigosum–littorale Complex
title_full_unstemmed Extensive Copy Number Variation Explains Genome Size Variation in the Unicellular Zygnematophycean Alga, Closterium peracerosum–strigosum–littorale Complex
title_short Extensive Copy Number Variation Explains Genome Size Variation in the Unicellular Zygnematophycean Alga, Closterium peracerosum–strigosum–littorale Complex
title_sort extensive copy number variation explains genome size variation in the unicellular zygnematophycean alga, closterium peracerosum–strigosum–littorale complex
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10407611/
https://www.ncbi.nlm.nih.gov/pubmed/37348049
http://dx.doi.org/10.1093/gbe/evad115
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