RsERF40 contributes to cold stress tolerance and cell expansion of taproot in radish (Raphanus sativus L.)

被引:7
|
作者
Li, Cui [1 ]
Mao, Baozhen [1 ]
Wang, Kai [1 ]
Xu, Liang [1 ]
Fan, Lianxue [1 ]
Wang, Yan [1 ]
Li, Ying [1 ]
Ma, Yinbo [2 ]
Wang, Lun [2 ]
Liu, Liwang [1 ,2 ]
机构
[1] Nanjing Agr Univ, Coll Hort, Natl Key Lab Crop Genet & Germplasm Enhancement &, Key Lab Hort Crop Biol & Genet Improvement East Ch, Nanjing 210095, Peoples R China
[2] Yangzhou Univ, Coll Hort & Landscape Architecture, Yangzhou 225009, Peoples R China
基金
中国国家自然科学基金;
关键词
TRANSCRIPTION FACTOR; GENE-EXPRESSION; LOW-TEMPERATURE; SALT STRESS; ARABIDOPSIS; CELLULOSE; ROOT; SUPEROXIDE; PLANTS;
D O I
10.1093/hr/uhad013
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
The growth and development of taproots are inhibited by cold stress in radish (Raphanus sativus L.). Ethylene-responsive element binding factors (ERF) are key participators in the cold stress response and growth regulation of plants. However, the function of ERF genes in cold tolerance and root development in radish remains elusive. Here, we showed that the secondary growth of radish taproots was inhibited by cold stress. Comparative transcriptome analysis demonstrated that the RsERF40 gene is an important regulator of the cold stress response and root growth regulation. The cold tolerance of transgenic Arabidopsis plants overexpressing the RsERF40 gene was significantly improved. Overexpressing RsERF40 in the cold-sensitive radish genotype and silencing RsERF40 in the cold-tolerant radish genotype indicated that RsERF40 was beneficial for alleviating oxidative damage under cold stress in radish. Transgenic Arabidopsis seedlings showed an increase in the elongation and radial growth of dark-grown roots. RT-qPCR analysis showed that the expression of the cold-related genes (CORs) RsCOR78 and RsCOR413PM1 and the cell wall strengthening-related genes RsCESA6 and RsEXPB3 was upregulated in transgenic Arabidopsis seedlings. Yeast one-hybrid (Y1H) and dual-luciferase reporter assays (DLA) revealed that RsERF40 directly regulates RsCOR78, RsCOR413PM1, RsCESA6 and RsEXPB3 expression, illustrating that RsERF40 enhances cold tolerance and taproot growth by modulating osmotic adjustment and cell wall mechanical strength in radish. In this study, the RsERF40-regulon was firstly found to be a new cold response pathway independent of the CBF-COR pathway conferring cold stress tolerance with increasing radish taproot growth. These results provided novel insight into the molecular mechanism underlying cold stress response and would facilitate the genetic improvement of cold tolerance in radish and other root vegetable crops.
引用
收藏
页数:12
相关论文
共 50 条
  • [11] Transcriptome profiling of root microRNAs reveals novel insights into taproot thickening in radish (Raphanus sativus L.)
    Yu, Rugang
    Wang, Yan
    Xu, Liang
    Zhu, Xianwen
    Zhang, Wei
    Wang, Ronghua
    Gong, Yiqin
    Limera, Cecilia
    Liu, Liwang
    BMC PLANT BIOLOGY, 2015, 15
  • [12] Differential proteomic analysis reveals sequential heat stress-responsive regulatory network in radish (Raphanus sativus L.) taproot
    Ronghua Wang
    Yi Mei
    Liang Xu
    Xianwen Zhu
    Yan Wang
    Jun Guo
    Liwang Liu
    Planta, 2018, 247 : 1109 - 1122
  • [13] Carbohydrates Variation in Leaves and Flashy Taproot of Vernalized and Non-Vernalized Radish (Raphanus sativus L.) during Flashy Taproot Development
    Du, X.
    Cheng, J.
    Yang, L.
    Wang, S.
    XXVIII INTERNATIONAL HORTICULTURAL CONGRESS ON SCIENCE AND HORTICULTURE FOR PEOPLE (IHC2010): INTERNATIONAL SYMPOSIUM ON QUALITY-CHAIN MANAGEMENT OF FRESH VEGETABLES: FROM FORK TO FARM, 2012, 936 : 443 - 448
  • [14] Comparative proteomic analysis provides insight into a complex regulatory network of taproot formation in radish (Raphanus sativus L.)
    Xie, Yang
    Xu, Liang
    Wang, Yan
    Fan, Lianxue
    Chen, Yinglong
    Tang, Mingjia
    Luo, Xiaobo
    Liu, Liwang
    HORTICULTURE RESEARCH, 2018, 5
  • [15] Proteomic Analysis of Heat Stress Response in Leaves of Radish (Raphanus sativus L.)
    Zhang, Yanyu
    Xu, Liang
    Zhu, Xianwen
    Gong, Yiqin
    Xiang, Fei
    Sun, Xiaochuan
    Liu, Liwang
    PLANT MOLECULAR BIOLOGY REPORTER, 2013, 31 (01) : 195 - 203
  • [16] Proteomic Analysis of Heat Stress Response in Leaves of Radish (Raphanus sativus L.)
    Yanyu Zhang
    Liang Xu
    Xianwen Zhu
    Yiqin Gong
    Fei Xiang
    Xiaochuan Sun
    Liwang Liu
    Plant Molecular Biology Reporter, 2013, 31 : 195 - 203
  • [17] Exogenous gibberellin suppressed taproot secondary thickening by inhibiting the formation and maintenance of vascular cambium in radish (Raphanus sativus L.)
    Meng, Ge
    Yong, Mingli
    Zhang, Ziyue
    Zhang, Yuqing
    Wang, Yahui
    Xiong, Aisheng
    Su, Xiaojun
    FRONTIERS IN PLANT SCIENCE, 2024, 15
  • [18] Methyl jasmonate, salicylic acid and abscisic acid enhance the accumulation of glucosinolates and sulforaphane in radish (Raphanus sativus L.) taproot
    Chen, Wei
    Wang, Yan
    Xu, Liang
    Dong, Junhui
    Zhu, Xianwen
    Ying, Jiali
    Wang, Qijiao
    Fan, Lianxue
    Li, Cui
    Liu, Liwang
    SCIENTIA HORTICULTURAE, 2019, 250 : 159 - 167
  • [19] De novo Taproot Transcriptome Sequencing and Analysis of Major Genes Involved in Sucrose Metabolism in Radish (Raphanus sativus L.)
    Yu, Rugang
    Xu, Liang
    Zhang, Wei
    Wang, Yan
    Luo, Xiaobo
    Wang, Ronghua
    Zhu, Xianwen
    Xie, Yang
    Karanja, Benard
    Liu, Liwang
    FRONTIERS IN PLANT SCIENCE, 2016, 7
  • [20] The effect of brassinosteroids on radish (Raphanus sativus L.) seedlings growing under cadmium stress
    Anuradha, S.
    Rao, S. S. R.
    PLANT SOIL AND ENVIRONMENT, 2007, 53 (11) : 465 - 472