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Haplotype‐resolved genome assembly of Populus tremula × P. alba reveals aspen‐specific megabase satellite DNA

Populus species play a foundational role in diverse ecosystems and are important renewable feedstocks for bioenergy and bioproducts. Hybrid aspen Populus tremula × P. alba INRA 717‐1B4 is a widely used transformation model in tree functional genomics and biotechnology research. As an outcrossing int...

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Published in:The Plant journal : for cell and molecular biology 2023-11, Vol.116 (4), p.1003-1017
Main Authors: Zhou, Ran, Jenkins, Jerry W, Zeng, Yibing, Shu, Shengqiang, Jang, Hosung, Harding, Scott A., Williams, Melissa, Plott, Christopher, Barry, Kerrie W., Koriabine, Maxim, Amirebrahimi, Mojgan, Talag, Jayson, Rajasekar, Shanmugam, Grimwood, Jane, Schmitz, Robert J., Dawe, R. Kelly, Schmutz, Jeremy, Tsai, Chung‐Jui
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cited_by cdi_FETCH-LOGICAL-c2674-20a9f264235fb755e760a29e860c3f1c74e90eac529fb3c36ce3add122a3b1cc3
cites cdi_FETCH-LOGICAL-c2674-20a9f264235fb755e760a29e860c3f1c74e90eac529fb3c36ce3add122a3b1cc3
container_end_page 1017
container_issue 4
container_start_page 1003
container_title The Plant journal : for cell and molecular biology
container_volume 116
creator Zhou, Ran
Jenkins, Jerry W
Zeng, Yibing
Shu, Shengqiang
Jang, Hosung
Harding, Scott A.
Williams, Melissa
Plott, Christopher
Barry, Kerrie W.
Koriabine, Maxim
Amirebrahimi, Mojgan
Talag, Jayson
Rajasekar, Shanmugam
Grimwood, Jane
Schmitz, Robert J.
Dawe, R. Kelly
Schmutz, Jeremy
Tsai, Chung‐Jui
description Populus species play a foundational role in diverse ecosystems and are important renewable feedstocks for bioenergy and bioproducts. Hybrid aspen Populus tremula × P. alba INRA 717‐1B4 is a widely used transformation model in tree functional genomics and biotechnology research. As an outcrossing interspecific hybrid, its genome is riddled with sequence polymorphisms which present a challenge for sequence‐sensitive analyses. Here we report a telomere‐to‐telomere genome for this hybrid aspen with two chromosome‐scale, haplotype‐resolved assemblies. We performed a comprehensive analysis of the repetitive landscape and identified both tandem repeat array‐based and array‐less centromeres. Unexpectedly, the most abundant satellite repeats in both haplotypes lie outside of the centromeres, consist of a 147 bp monomer PtaM147, frequently span >1 megabases, and form heterochromatic knobs. PtaM147 repeats are detected exclusively in aspens (section Populus ) but PtaM147‐like sequences occur in LTR‐retrotransposons of closely related species, suggesting their origin from the retrotransposons. The genomic resource generated for this transformation model genotype has greatly improved the design and analysis of genome editing experiments that are highly sensitive to sequence polymorphisms. The work should motivate future hypothesis‐driven research to probe into the function of the abundant and aspen‐specific PtaM147 satellite DNA. High‐quality, chromosome‐scale haplotype assemblies are needed for exploring not only gene‐rich but also gene‐poor genome regions of any outcrossing species for functional, population, ecological, and evolutionary research. We generated telomere‐to‐telomere, haplotype‐resolved assemblies for hybrid aspen 717 used in transgenic research. We exemplified the value of the genome with the discovery of an abundant class of tandem repeat arrays that differentiates aspen from closely related Populus species.
doi_str_mv 10.1111/tpj.16454
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identifier ISSN: 0960-7412
ispartof The Plant journal : for cell and molecular biology, 2023-11, Vol.116 (4), p.1003-1017
issn 0960-7412
1365-313X
language eng
recordid cdi_osti_scitechconnect_1998982
source Wiley-Blackwell Read & Publish Collection; EZB Electronic Journals Library
subjects Arrays
Biotechnology
Centromeres
Chromosomes
Deoxyribonucleic acid
DNA
Genetic transformation
Genomes
Genomics
Haplotypes
Interspecific hybridization
Knobs
Nucleotide sequence
Populus tremula
Satellite DNA
Telomeres
title Haplotype‐resolved genome assembly of Populus tremula × P. alba reveals aspen‐specific megabase satellite DNA
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