Medicago truncatula β-glucosidase 17 contributes to drought and salt tolerance through antioxidant flavonoid accumulation

被引:6
|
作者
Du, Wenxuan [1 ]
Yang, Junfeng [2 ,3 ]
Li, Qian [1 ]
Jiang, Wenbo [1 ]
Pang, Yongzhen [1 ]
机构
[1] Chinese Acad Agr Sci, Inst Anim Sci, Beijing 100193, Peoples R China
[2] Chinese Acad Sci, Inst Bot, Beijing Bot Garden, Beijing, Peoples R China
[3] Hunan Agr Univ, Coll Hort, Changsha, Peoples R China
来源
PLANT CELL AND ENVIRONMENT | 2024年 / 47卷 / 08期
关键词
abioitc stress; enzyme; flavonoid; 7-O-glucosides; overexpressioin; Tnt-1; mutant; STRUCTURAL-CHARACTERIZATION; ABIOTIC STRESS; IDENTIFICATION; ANTHOCYANIN;
D O I
10.1111/pce.14928
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Flavonoids are usually present in forms of glucosides in plants, which could be catabolized by beta-glucosidase (BGLU) to form their corresponding flavonoid aglycones. In this study, we isolated three abiotic-responsive BGLU genes (MtBGLU17, MtBGLU21 and MtBGLU22) from Medicago truncatula, and found only the recombinant MtBGLU17 protein could catalyse the hydrolysis of flavonoid glycosides. The recombinant MtBGLU17 protein is active towards a variety of flavonoid glucosides, including glucosides of flavones (apigenin and luteolin), flavonols (kaempferol and quercetin), isoflavones (genistein and daidzein) and flavanone (naringenin). In particular, the recombinant MtBGLU17 protein preferentially hydrolyses flavonoid-7-O-glucosides over their corresponding 3-O-glucosides. The content of luteoin-7-O-glucoside was reduced in the MtBGLU17 overexpression plants but increased in the Tnt-1 insertional mutant lines, whereas luteoin content was increased in the MtBGLU17 overexpression plants but reduced in the Tnt-1 insertional mutant lines. Under drought and salt (NaCl) treatment, the MtBGLU17 overexpression lines showed relatively higher DPPH content, and higher CAT and SOD activity than the wild type control. These results indicated that overexpression lines of MtBGLU17 possess higher antioxidant activity and thus confer drought and salt tolerance, implying MtBGLU17 could be potentially used as a candidate gene to improve plant abiotic stress tolerance.
引用
收藏
页码:3076 / 3089
页数:14
相关论文
共 50 条
  • [21] QTL mapping of physiological traits associated with salt tolerance in Medicago truncatula Recombinant Inbred Lines
    Arraouadi, Soumaya
    Badri, Mounawer
    Abdelly, Chedly
    Huguet, Thierry
    Aouani, Mohamed Elarbi
    GENOMICS, 2012, 99 (02) : 118 - 125
  • [22] Identification of Competing Endogenous RNAs (ceRNAs) Network Associated with Drought Tolerance in Medicago truncatula with Rhizobium Symbiosis
    Jing, Jiaxian
    Yang, Peizhi
    Wang, Yue
    Qu, Qihao
    An, Jie
    Fu, Bingzhe
    Hu, Xiaoning
    Zhou, Yi
    Hu, Tianming
    Cao, Yuman
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2022, 23 (22)
  • [23] Medicago truncatula and Glycine max: Different Drought Tolerance and Similar Local Response of the Root Nodule Proteome
    Gil-Quintana, Erena
    Lyon, David
    Staudinger, Christiana
    Wienkoop, Stefanie
    Gonzalez, Esther M.
    JOURNAL OF PROTEOME RESEARCH, 2015, 14 (12) : 5240 - 5251
  • [24] Sodium accumulation contributes to salt stress tolerance in lettuce cultivars
    Bartha, Csaba
    Fodorpataki, Laszlo
    del Carmen Martinez-Ballesta, Maria
    Popescu, Octavian
    Carvajal, Micaela
    JOURNAL OF APPLIED BOTANY AND FOOD QUALITY, 2015, 88 : 42 - 48
  • [25] Salt and drought tolerance of sugarcane under iso-osmotic salt and water stress: growth, osmolytes accumulation, and antioxidant defense
    Patade, Vikas Yadav
    Bhargava, Sujata
    Suprasanna, Penna
    JOURNAL OF PLANT INTERACTIONS, 2011, 6 (04) : 275 - 282
  • [26] Validamycin A improves the response of Medicago truncatula plants to salt stress by inducing trehalose accumulation in the root nodules
    Lopez, Miguel
    Tejera, Noel A.
    Lluch, Carmen
    JOURNAL OF PLANT PHYSIOLOGY, 2009, 166 (11) : 1218 - 1222
  • [27] The GARP family transcription factor MtHHO3 negatively regulates salt tolerance in Medicago truncatula
    Wang, Xue
    Wei, Chunxue
    Huang, Hongmei
    Kang, Junmei
    Long, Ruicai
    Chen, Lin
    Li, Mingna
    Yang, Qingchuan
    PLANT PHYSIOLOGY AND BIOCHEMISTRY, 2024, 209
  • [28] Comparison of the physiological factors in ion accumulation and photosynthetic electron transport between legumes Medicago truncatula and Medicago sativa under salt stress
    Wang, Xiaoshan
    Wang, Jing
    Yin, Juncheng
    Li, Junhao
    PLANT AND SOIL, 2023, 484 (1-2) : 473 - 486
  • [29] The U-box family genes in Medicago truncatula: Key elements in response to salt, cold, and drought stresses
    Song, Jianbo
    Mo, Xiaowei
    Yang, Haiqi
    Yue, Luming
    Song, Jun
    Mo, Beixin
    PLOS ONE, 2017, 12 (08):
  • [30] Ectopic expression of Medicago truncatula homeodomain finger protein, MtPHD6, enhances drought tolerance in Arabidopsis
    Quan, Wenli
    Liu, Xun
    Wang, Lihua
    Yin, Mingzhu
    Yang, Li
    Chan, Zhulong
    BMC GENOMICS, 2019, 20 (01)