AUXIN RESPONSE FACTOR 2 mediates repression of strawberry receptacle ripening via auxin-ABA interplay

被引:3
|
作者
Li, Bai-Jun [1 ,2 ,3 ,4 ]
Shi, Yan-Na [1 ,3 ,4 ]
Xiao, Yan-Ning [1 ]
Jia, Hao-Ran [1 ]
Yang, Xiao-Fang [5 ]
Dai, Zheng-Rong [1 ,3 ,4 ]
Sun, Yun-Fan [1 ]
Shou, Jia-Han [1 ]
Jiang, Gui-Hua
Grierson, Donald [4 ,6 ]
Chen, Kun-Song [1 ,3 ,4 ]
机构
[1] Zhejiang Univ, Coll Agr & Biotechnol, Zijingang Campus, Hangzhou 310058, Peoples R China
[2] Guangxi Univ, Coll Agr, State Key Lab Conservat & Utilizat Subtrop Agro B, Nanning 530004, Peoples R China
[3] Zhejiang Univ, Zhejiang Key Lab Hort Crop Qual Improvement, Zijingang Campus, Hangzhou 310058, Peoples R China
[4] Zhejiang Univ, State Agr Minist Lab Hort Plant Growth Dev & Qual, Zijingang Campus, Hangzhou 310058, Peoples R China
[5] Zhejiang Acad Agr Sci, Inst Hort, Hangzhou 310058, Peoples R China
[6] Univ Nottingham, Sch Biosci, Div Plant & Crop Sci, Sutton Bonington Campus, Loughborough LE12 5RD, England
基金
中国国家自然科学基金;
关键词
ABSCISIC-ACID; NEGATIVE REGULATOR; FRUIT-DEVELOPMENT; TRANSCRIPTION; TOMATO; METABOLISM; ENCODES; ROLES; PLAYS; MYB10;
D O I
10.1093/plphys/kiae510
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Cultivated strawberry (Fragaria x ananassa) is a popular, economically important fruit. The ripening of the receptacle (pseudocarp), the main edible part, depends on endogenously produced abscisic acid (ABA) and is suppressed by the high level of auxin produced from achenes (true fruit) during early development. However, the mechanism whereby auxin regulates receptacle ripening through inhibiting ABA biosynthesis remains unclear. Here, we identified AUXIN RESPONSE FACTOR 2 (FaARF2), which showed decreased expression with reduced auxin content in the receptacle, leading to increased ABA levels and accelerated ripening. Dual-luciferase, yeast one-hybrid, and electrophoretic mobility shift assays demonstrated that FaARF2 could bind to the AuxRE element in the promoter of 9-CIS-EPOXYCAROT-ENOID DIOXYGENASE 1 (FaNCED1), a key ABA biosynthetic gene, to suppress its transcriptional activity. Transiently overexpressing FaARF2 in the receptacles decreased FaNCED1 expression and ABA levels, resulting in inhibition of receptacle ripening and of development of quality attributes, such as pigmentation, aroma, and sweetness. This inhibition caused by overexpressing FaARF2 was partially recovered by the injection of exogenous ABA; conversely, transient silencing of FaARF2 using RNA interference produced the opposite results. The negative targeting of FaNCED1 by FaARF2 is a key link between auxin-ABA interactions and regulation of strawberry ripening.
引用
收藏
页码:2638 / 2653
页数:16
相关论文
共 50 条
  • [21] A GARP transcription factor SlGCC positively regulates lateral root development in tomato via auxin-ethylene interplay
    Kumar, Vinod
    Majee, Adity
    Patwal, Pooja
    Sairem, Babythoihoi
    Sane, Aniruddha P.
    Sane, Vidhu A.
    PLANTA, 2024, 259 (03)
  • [22] Correction to: A GARP transcription factor SlGCC positively regulates lateral root development in tomato via auxin‑ethylene interplay
    Vinod Kumar
    Adity Majee
    Pooja Patwal
    Babythoithoi Sairem
    Aniruddha P. Sane
    Vidhu A. Sane
    Planta, 2024, 259
  • [23] A GARP transcription factor SlGCC positively regulates lateral root development in tomato via auxin-ethylene interplay
    Vinod Kumar
    Adity Majee
    Pooja Patwal
    Babythoihoi Sairem
    Aniruddha P. Sane
    Vidhu A. Sane
    Planta, 2024, 259
  • [24] AUXIN RESPONSE FACTOR7 integrates gibberellin and auxin signaling via interactions between DELLA and AUX/IAA proteins to regulate cambial activity in poplar
    Hu, Jian
    Su, Huili
    Cao, Hui
    Wei, Hongbin
    Fu, Xiaokang
    Jiang, Xuemei
    Song, Qin
    He, Xinhua
    Xu, Changzheng
    Luo, Keming
    PLANT CELL, 2022, 34 (07): : 2688 - 2707
  • [25] SlPP2C2 interacts with FZY/SAUR and regulates tomato development via signaling crosstalk of ABA and auxin
    Li, Qian
    Wang, Juan
    Yin, Zhaonan
    Pan, Yingfang
    Mao, Wei
    Peng, Liangyu
    Guo, Xinyue
    Li, Bao
    Leng, Ping
    PLANT JOURNAL, 2024, 119 (02): : 1073 - 1090
  • [26] Arabidopsis AUXIN RESPONSE FACTOR6 and 8 Regulate Jasmonic Acid Biosynthesis and Floral Organ Development via Repression of Class 1 KNOX Genes
    Tabata, Ryo
    Ikezaki, Masaya
    Fujibe, Takahiro
    Aida, Mitsuhiro
    Tian, Chang-en
    Ueno, Yoshihisa
    Yamamoto, Kotaro T.
    Machida, Yasunori
    Nakamura, Kenzo
    Ishiguro, Sumie
    PLANT AND CELL PHYSIOLOGY, 2010, 51 (01) : 164 - 175
  • [27] Genetic Interaction of SEEDSTICK, GORDITA and AUXIN RESPONSE FACTOR 2 during Seed Development
    Paolo, Dario
    Orozco-Arroyo, Gregorio
    Rotasperti, Lisa
    Masiero, Simona
    Colombo, Lucia
    de Folter, Stefan
    Ambrose, Barbara A.
    Caporali, Elisabetta
    Ezquer, Ignacio
    Mizzotti, Chiara
    GENES, 2021, 12 (08)
  • [28] Repression of AUXIN RESPONSE FACTOR10 by microRNA160 is critical for seed germination and post-germination stages
    Liu, Po-Pu
    Montgomery, Taiowa A.
    Fahlgren, Noah
    Kasschau, Kristin D.
    Nonogaki, Hiroyuki
    Carrington, James C.
    PLANT JOURNAL, 2007, 52 (01): : 133 - 146
  • [29] The auxin response factor gene family in banana: genome-wide identification and expression analyses during development, ripening, and abiotic stress
    Hu, Wei
    Zuo, Jiao
    Hou, Xiaowan
    Yan, Yan
    Wei, Yunxie
    Liu, Juhua
    Li, Meiying
    Xu, Biyu
    Jin, Zhiqiang
    FRONTIERS IN PLANT SCIENCE, 2015, 6
  • [30] RNA-Seq and WGBS Analyses During Fruit Ripening and in Response to ABA in Sweet Cherry (Prunus avium) Reveal Genetic and Epigenetic Modulation of Auxin and Cytokinin Genes
    Kuhn, Nathalie
    Arellano, Macarena
    Ponce, Claudio
    Hodar, Christian
    Correa, Francisco
    Multari, Salvatore
    Martens, Stefan
    Carrera, Esther
    Donoso, Jose Manuel
    Meisel, Lee A.
    JOURNAL OF PLANT GROWTH REGULATION, 2025, 44 (03) : 1165 - 1187