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Genomic analyses provide insights into the evolution and salinity adaptation of halophyte Tamarix chinensis

BACKGROUND: The woody halophyte Tamarix chinensis is a pioneer tree species in the coastal wetland ecosystem of northern China, exhibiting high resistance to salt stress. However, the genetic information underlying salt tolerance in T. chinensis remains to be seen. Here we present a genomic investig...

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Autores principales: Liu, Jian Ning, Fang, Hongcheng, Liang, Qiang, Dong, Yuhui, Wang, Changxi, Yan, Liping, Ma, Xinmei, Zhou, Rui, Lang, Xinya, Gai, Shasha, Wang, Lichang, Xu, Shengyi, Yang, Ke Qiang, Wu, Dejun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10370455/
https://www.ncbi.nlm.nih.gov/pubmed/37494283
http://dx.doi.org/10.1093/gigascience/giad053
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author Liu, Jian Ning
Fang, Hongcheng
Liang, Qiang
Dong, Yuhui
Wang, Changxi
Yan, Liping
Ma, Xinmei
Zhou, Rui
Lang, Xinya
Gai, Shasha
Wang, Lichang
Xu, Shengyi
Yang, Ke Qiang
Wu, Dejun
author_facet Liu, Jian Ning
Fang, Hongcheng
Liang, Qiang
Dong, Yuhui
Wang, Changxi
Yan, Liping
Ma, Xinmei
Zhou, Rui
Lang, Xinya
Gai, Shasha
Wang, Lichang
Xu, Shengyi
Yang, Ke Qiang
Wu, Dejun
author_sort Liu, Jian Ning
collection PubMed
description BACKGROUND: The woody halophyte Tamarix chinensis is a pioneer tree species in the coastal wetland ecosystem of northern China, exhibiting high resistance to salt stress. However, the genetic information underlying salt tolerance in T. chinensis remains to be seen. Here we present a genomic investigation of T. chinensis to elucidate the underlying mechanism of its high resistance to salinity. RESULTS: Using a combination of PacBio and high-throughput chromosome conformation capture data, a chromosome-level T. chinensis genome was assembled with a size of 1.32 Gb and scaffold N50 of 110.03 Mb. Genome evolution analyses revealed that T. chinensis significantly expanded families of HAT and LIMYB genes. Whole-genome and tandem duplications contributed to the expansion of genes associated with the salinity adaptation of T. chinensis. Transcriptome analyses were performed on root and shoot tissues during salt stress and recovery, and several hub genes responding to salt stress were identified. WRKY33/40, MPK3/4, and XBAT31 were critical in responding to salt stress during early exposure, while WRKY40, ZAT10, AHK4, IRX9, and CESA4/8 were involved in responding to salt stress during late stress and recovery. In addition, PER7/27/57/73 encoding class III peroxidase and MCM3/4/5/7 encoding DNA replication licensing factor maintained up/downregulation during salt stress and recovery stages. CONCLUSIONS: The results presented here reveal the genetic mechanisms underlying salt adaptation in T. chinensis, thus providing important genomic resources for evolutionary studies on tamarisk and plant salt tolerance genetic improvement.
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spelling pubmed-103704552023-07-27 Genomic analyses provide insights into the evolution and salinity adaptation of halophyte Tamarix chinensis Liu, Jian Ning Fang, Hongcheng Liang, Qiang Dong, Yuhui Wang, Changxi Yan, Liping Ma, Xinmei Zhou, Rui Lang, Xinya Gai, Shasha Wang, Lichang Xu, Shengyi Yang, Ke Qiang Wu, Dejun Gigascience Research BACKGROUND: The woody halophyte Tamarix chinensis is a pioneer tree species in the coastal wetland ecosystem of northern China, exhibiting high resistance to salt stress. However, the genetic information underlying salt tolerance in T. chinensis remains to be seen. Here we present a genomic investigation of T. chinensis to elucidate the underlying mechanism of its high resistance to salinity. RESULTS: Using a combination of PacBio and high-throughput chromosome conformation capture data, a chromosome-level T. chinensis genome was assembled with a size of 1.32 Gb and scaffold N50 of 110.03 Mb. Genome evolution analyses revealed that T. chinensis significantly expanded families of HAT and LIMYB genes. Whole-genome and tandem duplications contributed to the expansion of genes associated with the salinity adaptation of T. chinensis. Transcriptome analyses were performed on root and shoot tissues during salt stress and recovery, and several hub genes responding to salt stress were identified. WRKY33/40, MPK3/4, and XBAT31 were critical in responding to salt stress during early exposure, while WRKY40, ZAT10, AHK4, IRX9, and CESA4/8 were involved in responding to salt stress during late stress and recovery. In addition, PER7/27/57/73 encoding class III peroxidase and MCM3/4/5/7 encoding DNA replication licensing factor maintained up/downregulation during salt stress and recovery stages. CONCLUSIONS: The results presented here reveal the genetic mechanisms underlying salt adaptation in T. chinensis, thus providing important genomic resources for evolutionary studies on tamarisk and plant salt tolerance genetic improvement. Oxford University Press 2023-07-26 /pmc/articles/PMC10370455/ /pubmed/37494283 http://dx.doi.org/10.1093/gigascience/giad053 Text en © The Author(s) 2023. Published by Oxford University Press GigaScience. 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 Research
Liu, Jian Ning
Fang, Hongcheng
Liang, Qiang
Dong, Yuhui
Wang, Changxi
Yan, Liping
Ma, Xinmei
Zhou, Rui
Lang, Xinya
Gai, Shasha
Wang, Lichang
Xu, Shengyi
Yang, Ke Qiang
Wu, Dejun
Genomic analyses provide insights into the evolution and salinity adaptation of halophyte Tamarix chinensis
title Genomic analyses provide insights into the evolution and salinity adaptation of halophyte Tamarix chinensis
title_full Genomic analyses provide insights into the evolution and salinity adaptation of halophyte Tamarix chinensis
title_fullStr Genomic analyses provide insights into the evolution and salinity adaptation of halophyte Tamarix chinensis
title_full_unstemmed Genomic analyses provide insights into the evolution and salinity adaptation of halophyte Tamarix chinensis
title_short Genomic analyses provide insights into the evolution and salinity adaptation of halophyte Tamarix chinensis
title_sort genomic analyses provide insights into the evolution and salinity adaptation of halophyte tamarix chinensis
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10370455/
https://www.ncbi.nlm.nih.gov/pubmed/37494283
http://dx.doi.org/10.1093/gigascience/giad053
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