Overexpression of the maize genes ZmSKL1 and ZmSKL2 positively regulates drought stress tolerance in transgenic Arabidopsis

被引:6
作者
Liu, Yuqing [1 ]
Li, Aiqi [1 ]
Liang, Mengna [1 ]
Zhang, Qin [1 ]
Wu, Jiandong [1 ]
机构
[1] Anhui Agr Univ, Sch Life Sci, Natl Engn Lab Crop Stress Resistance Breeding, Hefei 230036, Anhui, Peoples R China
关键词
Maize; ZmSKL genes; Drought tolerance; Stomata; Reactive oxygen species; ZmASR3; ENHANCES DROUGHT; SALT STRESS; EXPRESSION; PATHWAY; ROOTS; RICE; ABA;
D O I
10.1007/s00299-022-02974-8
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
The shikimate pathway has been reported to play an important role in plant signaling, reproduction, and development. However, its role in abiotic stress has not yet been reported. Here, two shikimate kinase-like genes, SKL1 and SKL2, were cloned from maize and their functions in mediating drought tolerance were investigated. Transcript levels of ZmSKL1 and ZmSKL2 in roots and leaves were strongly induced by drought stress. Both proteins were localized in the chloroplast. Furthermore, compared to the wild-type, transgenic Arabidopsis plants overexpressing ZmSKL1 or ZmSKL2 exhibited improved drought stress tolerance through increases in relative water content and stomatal closure. Additionally, the transgenic lines showed reduced accumulation of reactive oxygen species as a results of increased antioxidant enzyme activity. Interestingly, overexpression of ZmSKL1 or ZmSKL2 also increased sensitivity to exogenous abscisic acid. In addition, the ROS-related and stress-responsive genes were activated in transgenic lines under drought stress. Moreover, ZmSKL1 and ZmSKL2 were found to separately interact with ZmASR3, which is an important regulatory protein in mediating drought tolerance, suggesting that ZmSKL1 and ZmSKL2, together with ZmASR3, are proteins that may confer drought tolerance as candidates in plant genetic breeding manipulations.
引用
收藏
页码:521 / 533
页数:13
相关论文
共 32 条
  • [1] Overexpression of improvedEPSPSgene results in field level glyphosate tolerance and higher grain yield in rice
    Achary, V. Mohan Murali
    Sheri, Vijay
    Manna, Mrinalini
    Panditi, Varakumar
    Borphukan, Bhabesh
    Ram, Babu
    Agarwal, Aakrati
    Fartyal, Dhirendra
    Teotia, Deepa
    Masakapalli, Shyam Kumar
    Agrawal, Pawan K.
    Reddy, Malireddy K.
    [J]. PLANT BIOTECHNOLOGY JOURNAL, 2020, 18 (12) : 2504 - 2519
  • [2] Reactive oxygen species: Metabolism, oxidative stress, and signal transduction
    Apel, K
    Hirt, H
    [J]. ANNUAL REVIEW OF PLANT BIOLOGY, 2004, 55 : 373 - 399
  • [3] Small Pores with a Big Impact
    Blatt, Michael R.
    Brodribb, Tim J.
    Torii, Keiko U.
    [J]. PLANT PHYSIOLOGY, 2017, 174 (02) : 467 - 469
  • [4] Clough SJ, 2005, METH MOL B, V286, P91
  • [5] Francini A, 2019, PLANT SIGNALING MOLECULES: ROLE AND REGULATION UNDER STRESSFUL ENVIRONMENTS, P183, DOI 10.1016/B978-0-12-816451-8.00011-3
  • [6] Evolutionary Diversification of Plant Shikimate Kinase Gene Duplicates
    Fucile, Geoffrey
    Falconer, Shannon
    Christendat, Dinesh
    [J]. PLOS GENETICS, 2008, 4 (12):
  • [7] Plant abiotic stress response and nutrient use efficiency
    Gong, Zhizhong
    Xiong, Liming
    Shi, Huazhong
    Yang, Shuhua
    Herrera-Estrella, Luis R.
    Xu, Guohua
    Chao, Dai-Yin
    Li, Jingrui
    Wang, Peng-Yun
    Qin, Feng
    Li, Jijang
    Ding, Yanglin
    Shi, Yiting
    Wang, Yu
    Yang, Yongqing
    Guo, Yan
    Zhu, Jian-Kang
    [J]. SCIENCE CHINA-LIFE SCIENCES, 2020, 63 (05) : 635 - 674
  • [8] Twenty years of research on Asr (ABA-stress-ripening) genes and proteins
    Gonzalez, Rodrigo M.
    Iusem, Norberto D.
    [J]. PLANTA, 2014, 239 (05) : 941 - 949
  • [9] The physiology of plant responses to drought
    Gupta, Aditi
    Rico-Medina, Andres
    Cano-Delgado, Ana I.
    [J]. SCIENCE, 2020, 368 (6488) : 266 - 269
  • [10] HERRMANN KM, 1995, PLANT CELL, V7, P907