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Transcriptional landscapes of de novo root regeneration from detached Arabidopsis leaves revealed by time-lapse and single-cell RNA sequencing analyses

Detached Arabidopsis thaliana leaves can regenerate adventitious roots, providing a platform for studying de novo root regeneration (DNRR). However, the comprehensive transcriptional framework of DNRR remains elusive. Here, we provide a high-resolution landscape of transcriptome reprogramming from w...

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Autores principales: Liu, Wu, Zhang, Yuyun, Fang, Xing, Tran, Sorrel, Zhai, Ning, Yang, Zhengfei, Guo, Fu, Chen, Lyuqin, Yu, Jie, Ison, Madalene S., Zhang, Teng, Sun, Lijun, Bian, Hongwu, Zhang, Yijing, Yang, Li, Xu, Lin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9284295/
https://www.ncbi.nlm.nih.gov/pubmed/35605192
http://dx.doi.org/10.1016/j.xplc.2022.100306
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author Liu, Wu
Zhang, Yuyun
Fang, Xing
Tran, Sorrel
Zhai, Ning
Yang, Zhengfei
Guo, Fu
Chen, Lyuqin
Yu, Jie
Ison, Madalene S.
Zhang, Teng
Sun, Lijun
Bian, Hongwu
Zhang, Yijing
Yang, Li
Xu, Lin
author_facet Liu, Wu
Zhang, Yuyun
Fang, Xing
Tran, Sorrel
Zhai, Ning
Yang, Zhengfei
Guo, Fu
Chen, Lyuqin
Yu, Jie
Ison, Madalene S.
Zhang, Teng
Sun, Lijun
Bian, Hongwu
Zhang, Yijing
Yang, Li
Xu, Lin
author_sort Liu, Wu
collection PubMed
description Detached Arabidopsis thaliana leaves can regenerate adventitious roots, providing a platform for studying de novo root regeneration (DNRR). However, the comprehensive transcriptional framework of DNRR remains elusive. Here, we provide a high-resolution landscape of transcriptome reprogramming from wound response to root organogenesis in DNRR and show key factors involved in DNRR. Time-lapse RNA sequencing (RNA-seq) of the entire leaf within 12 h of leaf detachment revealed rapid activation of jasmonate, ethylene, and reactive oxygen species (ROS) pathways in response to wounding. Genetic analyses confirmed that ethylene and ROS may serve as wound signals to promote DNRR. Next, time-lapse RNA-seq within 5 d of leaf detachment revealed the activation of genes involved in organogenesis, wound-induced regeneration, and resource allocation in the wounded region of detached leaves during adventitious rooting. Genetic studies showed that BLADE-ON-PETIOLE1/2, which control aboveground organs, PLETHORA3/5/7, which control root organogenesis, and ETHYLENE RESPONSE FACTOR115, which controls wound-induced regeneration, are involved in DNRR. Furthermore, single-cell RNA-seq data revealed gene expression patterns in the wounded region of detached leaves during adventitious rooting. Overall, our study not only provides transcriptome tools but also reveals key factors involved in DNRR from detached Arabidopsis leaves.
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spelling pubmed-92842952022-07-16 Transcriptional landscapes of de novo root regeneration from detached Arabidopsis leaves revealed by time-lapse and single-cell RNA sequencing analyses Liu, Wu Zhang, Yuyun Fang, Xing Tran, Sorrel Zhai, Ning Yang, Zhengfei Guo, Fu Chen, Lyuqin Yu, Jie Ison, Madalene S. Zhang, Teng Sun, Lijun Bian, Hongwu Zhang, Yijing Yang, Li Xu, Lin Plant Commun Research Article Detached Arabidopsis thaliana leaves can regenerate adventitious roots, providing a platform for studying de novo root regeneration (DNRR). However, the comprehensive transcriptional framework of DNRR remains elusive. Here, we provide a high-resolution landscape of transcriptome reprogramming from wound response to root organogenesis in DNRR and show key factors involved in DNRR. Time-lapse RNA sequencing (RNA-seq) of the entire leaf within 12 h of leaf detachment revealed rapid activation of jasmonate, ethylene, and reactive oxygen species (ROS) pathways in response to wounding. Genetic analyses confirmed that ethylene and ROS may serve as wound signals to promote DNRR. Next, time-lapse RNA-seq within 5 d of leaf detachment revealed the activation of genes involved in organogenesis, wound-induced regeneration, and resource allocation in the wounded region of detached leaves during adventitious rooting. Genetic studies showed that BLADE-ON-PETIOLE1/2, which control aboveground organs, PLETHORA3/5/7, which control root organogenesis, and ETHYLENE RESPONSE FACTOR115, which controls wound-induced regeneration, are involved in DNRR. Furthermore, single-cell RNA-seq data revealed gene expression patterns in the wounded region of detached leaves during adventitious rooting. Overall, our study not only provides transcriptome tools but also reveals key factors involved in DNRR from detached Arabidopsis leaves. Elsevier 2022-02-25 /pmc/articles/PMC9284295/ /pubmed/35605192 http://dx.doi.org/10.1016/j.xplc.2022.100306 Text en © 2022 The Author(s) https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Article
Liu, Wu
Zhang, Yuyun
Fang, Xing
Tran, Sorrel
Zhai, Ning
Yang, Zhengfei
Guo, Fu
Chen, Lyuqin
Yu, Jie
Ison, Madalene S.
Zhang, Teng
Sun, Lijun
Bian, Hongwu
Zhang, Yijing
Yang, Li
Xu, Lin
Transcriptional landscapes of de novo root regeneration from detached Arabidopsis leaves revealed by time-lapse and single-cell RNA sequencing analyses
title Transcriptional landscapes of de novo root regeneration from detached Arabidopsis leaves revealed by time-lapse and single-cell RNA sequencing analyses
title_full Transcriptional landscapes of de novo root regeneration from detached Arabidopsis leaves revealed by time-lapse and single-cell RNA sequencing analyses
title_fullStr Transcriptional landscapes of de novo root regeneration from detached Arabidopsis leaves revealed by time-lapse and single-cell RNA sequencing analyses
title_full_unstemmed Transcriptional landscapes of de novo root regeneration from detached Arabidopsis leaves revealed by time-lapse and single-cell RNA sequencing analyses
title_short Transcriptional landscapes of de novo root regeneration from detached Arabidopsis leaves revealed by time-lapse and single-cell RNA sequencing analyses
title_sort transcriptional landscapes of de novo root regeneration from detached arabidopsis leaves revealed by time-lapse and single-cell rna sequencing analyses
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9284295/
https://www.ncbi.nlm.nih.gov/pubmed/35605192
http://dx.doi.org/10.1016/j.xplc.2022.100306
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