Positive regulatory role of strigolactone in plant responses to drought and salt stress

被引:502
|
作者
Chien Van Ha [1 ,2 ]
Antonio Leyva-Gonzalez, Marco [3 ]
Osakabe, Yuriko [4 ]
Uyen Thi Tran [1 ]
Nishiyama, Rie [1 ]
Watanabe, Yasuko [1 ]
Tanaka, Maho [5 ]
Seki, Motoaki [5 ]
Yamaguchi, Shinjiro [6 ]
Nguyen Van Dong [2 ]
Yamaguchi-Shinozaki, Kazuko [7 ]
Shinozaki, Kazuo [4 ]
Herrera-Estrella, Luis [3 ]
Lam-Son Phan Tran [1 ]
机构
[1] RIKEN, Ctr Sustainable Resource Sci, Signaling Pathway Res Unit, Yokohama, Kanagawa 2300045, Japan
[2] Vietnamese Acad Agr Sci, Agr Genet Inst, Natl Key Lab Plant Cell Biotechnol, Hanoi 100000, Vietnam
[3] Ctr Invest & Estudios Avanzados, Lab Nacl Genom Biodiversidad, Guanajuato 36821, Mexico
[4] RIKEN, Ctr Sustainable Resource Sci, Gene Discovery Res Grp, Yokohama, Kanagawa 2300045, Japan
[5] RIKEN, Ctr Sustainable Resource Sci, Plant Genom Network Res Team, Yokohama, Kanagawa 2300045, Japan
[6] Tohoku Univ, Grad Sch Life Sci, Lab Bioact Mol, Sendai, Miyagi 9808577, Japan
[7] Univ Tokyo, Grad Sch Agr & Life Sci, Lab Plant Mol Physiol, Tokyo 1138657, Japan
关键词
hormonal regulation; plant adaptation; transcriptome analysis; ABSCISIC-ACID; BIOSYNTHETIC-PATHWAY; ARABIDOPSIS; TOLERANCE; CYTOKININ; ROOT; INHIBITION; EXPRESSION; ETHYLENE; MUTANTS;
D O I
10.1073/pnas.1322135111
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
This report provides direct evidence that strigolactone (SL) positively regulates drought and high salinity responses in Arabidopsis. Both SL-deficient and SL-response [more axillary growth (max)] mutants exhibited hypersensitivity to drought and salt stress, which was associated with shoot-rather than root-related traits. Exogenous SL treatment rescued the drought-sensitive phenotype of the SL-deficient mutants but not of the SL-response mutant, and enhanced drought tolerance of WT plants, confirming the role of SL as a positive regulator in stress response. In agreement with the drought-sensitive phenotype, max mutants exhibited increased leaf stomatal density relative to WT and slower abscisic acid (ABA)-induced stomatal closure. Compared with WT, the max mutants exhibited increased leaf water loss rate during dehydration and decreased ABA responsiveness during germination and postgermination. Collectively, these results indicate that cross-talk between SL and ABA plays an important role in integrating stress signals to regulate stomatal development and function. Additionally, a comparative microarray analysis of the leaves of the SL-response max2 mutant and WT plants under normal and dehydrative conditions revealed an SL-mediated network controlling plant responses to stress via many stress-and/or ABA-responsive and cytokinin metabolism-related genes. Our results demonstrate that plants integrate multiple hormone-response pathways for adaptation to environmental stress. Based on our results, genetic modulation of SL content/response could be applied as a potential approach to reduce the negative impact of abiotic stress on crop productivity.
引用
收藏
页码:851 / 856
页数:6
相关论文
共 50 条
  • [1] Effect of ethylene pretreatment on tomato plant responses to salt, drought, and waterlogging stress
    Mohorovic, Petar
    Geldhof, Batist
    Holsteens, Kristof
    Rinia, Marilien
    Ceusters, Johan
    van de Poel, Bram
    PLANT DIRECT, 2023, 7 (11)
  • [2] Identification and characterization of GmMYB118 responses to drought and salt stress
    Du, Yong-Tao
    Zhao, Meng-Jie
    Wang, Chang-Tao
    Gao, Yuan
    Wang, Yan-Xia
    Liu, Yong-Wei
    Chen, Ming
    Chen, Jun
    Zhou, Yong-Bin
    Xu, Zhao-Shi
    Ma, You-Zhi
    BMC PLANT BIOLOGY, 2018, 18
  • [3] The MdIAA29-MdARF4 complex plays an important role in balancing plant height with salt and drought stress responses
    Lei, Yingying
    Chen, Cui
    Chen, Wenjun
    Dai, Hongyan
    PLANT PHYSIOLOGY, 2024, 196 (04) : 2795 - 2811
  • [4] Plant responses to drought stress: microRNAs in action
    Islam, Waqar
    Idrees, Atif
    Waheed, Abdul
    Zeng, Fanjiang
    ENVIRONMENTAL RESEARCH, 2022, 215
  • [5] Protein kinases in plant responses to drought, salt, and cold stress
    Chen, Xuexue
    Ding, Yanglin
    Yang, Yongqing
    Song, Chunpeng
    Wang, Baoshan
    Yang, Shuhua
    Guo, Yan
    Gong, Zhizhong
    JOURNAL OF INTEGRATIVE PLANT BIOLOGY, 2021, 63 (01) : 53 - 78
  • [6] Regulatory networks of bZIPs in drought, salt and cold stress response and signaling
    Yang, Yanli
    Xu, Yi
    Feng, Baozhen
    Li, Peiqian
    Li, Chengqi
    Zhu, Chen-Yu
    Ren, Shu-Ning
    Wang, Hou-Ling
    PLANT SCIENCE, 2025, 352
  • [7] The role of plant growth promoting rhizobacteria in plant drought stress responses
    Chieb, Maha
    Gachomo, Emma W.
    BMC PLANT BIOLOGY, 2023, 23 (01)
  • [8] The regulatory role of phytohormones in plant drought tolerance
    Liao, Zhenqi
    Chen, Beibei
    Boubakri, Hatem
    Farooq, Muhammad
    Mur, Luis Alejandro Jose
    Urano, Daisuke
    Teo, Chee How
    Tan, Boon Chin
    Hasan, M. D. Mahadi
    Aslam, Mehtab Muhammad
    Tahir, Muhammad Yahya
    Fan, Junliang
    PLANTA, 2025, 261 (05)
  • [9] The Role of Cytokinins in Plant Under Salt Stress
    Yu, Yang
    Li, Yanli
    Yan, Zhenwei
    Duan, Xiangbo
    JOURNAL OF PLANT GROWTH REGULATION, 2022, 41 (06) : 2279 - 2291
  • [10] Regulation of Plant Responses to Salt Stress
    Zhao, Shuangshuang
    Zhang, Qikun
    Liu, Mingyue
    Zhou, Huapeng
    Ma, Changle
    Wang, Pingping
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2021, 22 (09)