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Cloning and functional analysis of the BrCUC2 gene in Brassica rapa L

The CUP-SHAPED COTYLEDON2 (CUC2) gene plays an important role in the formation of apical meristem and organ edges in plants. The apical meristematic tissue of Brassica rapa (B. rapa) is associated with cold resistance, however, the role of the CUC2 gene in cold resistance of B.rapa is unclear. In th...

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Autores principales: Tao, Xiaolei, Zhao, Yuhong, Ma, Li, Wu, Junyan, Zeng, Rui, Jiao, JinTang, Li, Rong, Ma, Weiming, Lian, Yintao, Wang, Wangtian, Pu, Yuanyuan, Yang, Gang, Liu, Lijun, Li, Xuecai, Sun, Wancang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10642757/
https://www.ncbi.nlm.nih.gov/pubmed/37965013
http://dx.doi.org/10.3389/fpls.2023.1274567
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author Tao, Xiaolei
Zhao, Yuhong
Ma, Li
Wu, Junyan
Zeng, Rui
Jiao, JinTang
Li, Rong
Ma, Weiming
Lian, Yintao
Wang, Wangtian
Pu, Yuanyuan
Yang, Gang
Liu, Lijun
Li, Xuecai
Sun, Wancang
author_facet Tao, Xiaolei
Zhao, Yuhong
Ma, Li
Wu, Junyan
Zeng, Rui
Jiao, JinTang
Li, Rong
Ma, Weiming
Lian, Yintao
Wang, Wangtian
Pu, Yuanyuan
Yang, Gang
Liu, Lijun
Li, Xuecai
Sun, Wancang
author_sort Tao, Xiaolei
collection PubMed
description The CUP-SHAPED COTYLEDON2 (CUC2) gene plays an important role in the formation of apical meristem and organ edges in plants. The apical meristematic tissue of Brassica rapa (B. rapa) is associated with cold resistance, however, the role of the CUC2 gene in cold resistance of B.rapa is unclear. In this study, we used bioinformatics software to analyze the structure of BrCUC2 gene, real-time fluorescence quantitative PCR to detect the expression level of BrCUC2, constructed transgenic Arabidopsis thaliana by the flower dipping method and subcellular localization for functional validation. The results showed that, we isolated a 1104 bp open reading frame of BrCUC2 from the winter B. rapa cultivar ‘Longyou 7’. The BrCUC2 contains a highly conserved domain belonging to the NAM superfamily. Its homologus CUC genes contain similar conserved motifs and are closely related to Brassica oleracea (B.oleracea), and the N-terminal of amino acid sequence contains NAC domain. BrCUC2 protein was localized in the nucleus and self-activation tests showed that pGBKT7-BrCUC2 had self-activation. Tissue-specific expression analysis and promoter β-Glucuronidase (GUS) activity showed that BrCUC2 had high expression levels in B. rapa growth points and A. thaliana leaf edges, stems and growth points. After low-temperature stress, BrCUC2 showed greater expression in ‘Longyou 7,’ which presents strong cold resistance and concave growth points, than in ‘Longyou 99,’ which presents weak cold resistance and protruding growth points. BrCUC2 promoter contains multiple elements related to stress responses. BrCUC2 overexpression revealed that the phenotype did not differ from that of the wild type during the seedling stage but showed weak growth and a dwarf phenotype during the flowering and mature stages. After low-temperature treatment, the physiological indexes and survival rate of BrCUC2-overexpression lines of Arabidopsis thaliana (A. thaliana) were better than those of the wild type within 12 h, although differences were not observed after 24 h. These results showed that BrCUC2 improved the low-temperature tolerance of transgenic A. thaliana within a short time. It can provide a foundation for the study of cold resistance in winter B. rapa.
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spelling pubmed-106427572023-11-14 Cloning and functional analysis of the BrCUC2 gene in Brassica rapa L Tao, Xiaolei Zhao, Yuhong Ma, Li Wu, Junyan Zeng, Rui Jiao, JinTang Li, Rong Ma, Weiming Lian, Yintao Wang, Wangtian Pu, Yuanyuan Yang, Gang Liu, Lijun Li, Xuecai Sun, Wancang Front Plant Sci Plant Science The CUP-SHAPED COTYLEDON2 (CUC2) gene plays an important role in the formation of apical meristem and organ edges in plants. The apical meristematic tissue of Brassica rapa (B. rapa) is associated with cold resistance, however, the role of the CUC2 gene in cold resistance of B.rapa is unclear. In this study, we used bioinformatics software to analyze the structure of BrCUC2 gene, real-time fluorescence quantitative PCR to detect the expression level of BrCUC2, constructed transgenic Arabidopsis thaliana by the flower dipping method and subcellular localization for functional validation. The results showed that, we isolated a 1104 bp open reading frame of BrCUC2 from the winter B. rapa cultivar ‘Longyou 7’. The BrCUC2 contains a highly conserved domain belonging to the NAM superfamily. Its homologus CUC genes contain similar conserved motifs and are closely related to Brassica oleracea (B.oleracea), and the N-terminal of amino acid sequence contains NAC domain. BrCUC2 protein was localized in the nucleus and self-activation tests showed that pGBKT7-BrCUC2 had self-activation. Tissue-specific expression analysis and promoter β-Glucuronidase (GUS) activity showed that BrCUC2 had high expression levels in B. rapa growth points and A. thaliana leaf edges, stems and growth points. After low-temperature stress, BrCUC2 showed greater expression in ‘Longyou 7,’ which presents strong cold resistance and concave growth points, than in ‘Longyou 99,’ which presents weak cold resistance and protruding growth points. BrCUC2 promoter contains multiple elements related to stress responses. BrCUC2 overexpression revealed that the phenotype did not differ from that of the wild type during the seedling stage but showed weak growth and a dwarf phenotype during the flowering and mature stages. After low-temperature treatment, the physiological indexes and survival rate of BrCUC2-overexpression lines of Arabidopsis thaliana (A. thaliana) were better than those of the wild type within 12 h, although differences were not observed after 24 h. These results showed that BrCUC2 improved the low-temperature tolerance of transgenic A. thaliana within a short time. It can provide a foundation for the study of cold resistance in winter B. rapa. Frontiers Media S.A. 2023-10-30 /pmc/articles/PMC10642757/ /pubmed/37965013 http://dx.doi.org/10.3389/fpls.2023.1274567 Text en Copyright © 2023 Tao, Zhao, Ma, Wu, Zeng, Jiao, Li, Ma, Lian, Wang, Pu, Yang, Liu, Li and Sun 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 Plant Science
Tao, Xiaolei
Zhao, Yuhong
Ma, Li
Wu, Junyan
Zeng, Rui
Jiao, JinTang
Li, Rong
Ma, Weiming
Lian, Yintao
Wang, Wangtian
Pu, Yuanyuan
Yang, Gang
Liu, Lijun
Li, Xuecai
Sun, Wancang
Cloning and functional analysis of the BrCUC2 gene in Brassica rapa L
title Cloning and functional analysis of the BrCUC2 gene in Brassica rapa L
title_full Cloning and functional analysis of the BrCUC2 gene in Brassica rapa L
title_fullStr Cloning and functional analysis of the BrCUC2 gene in Brassica rapa L
title_full_unstemmed Cloning and functional analysis of the BrCUC2 gene in Brassica rapa L
title_short Cloning and functional analysis of the BrCUC2 gene in Brassica rapa L
title_sort cloning and functional analysis of the brcuc2 gene in brassica rapa l
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10642757/
https://www.ncbi.nlm.nih.gov/pubmed/37965013
http://dx.doi.org/10.3389/fpls.2023.1274567
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