Increased glycine betaine synthesis and salinity tolerance in AhCMO transgenic cotton lines

被引:0
|
作者
Huijun Zhang
Hezhong Dong
Weijiang Li
Yi Sun
Shouyi Chen
Xiangqiang Kong
机构
[1] Shandong Academy of Agricultural Sciences,Cotton Research Center, Shandong Key Lab for Cotton Culture and Physiology
[2] Shanxi Academy of Agricultural Sciences,Cotton Research Institute
[3] The Agriculture Biotechnology Research Center of Shanxi Province,Institute of Genetics and Developmental Biology
[4] Chinese Academy of Sciences,undefined
来源
Molecular Breeding | 2009年 / 23卷
关键词
Glycine betaine; Choline monooxygenase; Salt stress; transgenic cotton;
D O I
暂无
中图分类号
学科分类号
摘要
Glycine betaine is an osmoprotectant that plays an important role and accumulates rapidly in many plants during salinity or drought stress. Choline monooxygenase (CMO) is a major catalyst in the synthesis of glycine betaine. In our previous study, a CMO gene (AhCMO) cloned from Atriplex hortensis was introduced into cotton (Gossypium hirsutum L.) via Agrobacterium mediation to enhance resistance to salinity stress. However, there is little or no knowledge of the salinity tolerance of the transgenic plants, particularly under saline-field conditions. In the present study, two transgenic AhCMO cotton lines of the T3 generation were used to study the AhCMO gene expression, and to determine their salinity tolerance in both greenhouse and field under salinity stress. Molecular analysis confirmed that the transgenic plants expressed the AhCMO gene. Greenhouse study showed that on average, seedlings of the transgenic lines accumulated 26 and 131% more glycine betaine than those of non-transgenic plants (SM3) under normal and salt-stress (150 mmol l−1 NaCl) conditions, respectively. The osmotic potential, electrolyte leakage and malondialdehyde (MDA) accumulation were significantly lower in leaves of the transgenic lines than in those of SM3 after salt stress. The net photosynthesis rate and Fv/Fm in transgenic cotton leaves were less affected by salinity than in non-transgenic cotton leaves. Therefore, transgenic cotton over-expressing AhCMO was more tolerant to salt stress due to elevated accumulation of glycine betaine, which provided greater protection of the cell membrane and photosynthetic capacity than in non-transgenic cotton. The seed cotton yield of the transgenic plants was lower under normal conditions, but was significantly higher than that of non-transgenic plants under salt-stressed field conditions. The results indicate that over-expression of AhCMO in cotton enhanced salt stress tolerance, which is of great value in cotton production in the saline fields.
引用
收藏
页码:289 / 298
页数:9
相关论文
共 50 条
  • [1] Increased glycine betaine synthesis and salinity tolerance in AhCMO transgenic cotton lines
    Zhang, Huijun
    Dong, Hezhong
    Li, Weijiang
    Sun, Yi
    Chen, Shouyi
    Kong, Xiangqiang
    MOLECULAR BREEDING, 2009, 23 (02) : 289 - 298
  • [2] Improved tolerance to salinity and low temperature in transgenic tobacco producing glycine betaine
    Holmström, KO
    Somersalo, S
    Mandal, A
    Palva, TE
    Welin, B
    JOURNAL OF EXPERIMENTAL BOTANY, 2000, 51 (343) : 177 - 185
  • [3] Improved salt tolerance of transgenic wheat by introducing betA gene for glycine betaine synthesis
    Chunmei He
    Aifang Yang
    Weiwei Zhang
    Qiang Gao
    Juren Zhang
    Plant Cell, Tissue and Organ Culture (PCTOC), 2010, 101 : 65 - 78
  • [4] Improved salt tolerance of transgenic wheat by introducing betA gene for glycine betaine synthesis
    He, Chunmei
    Yang, Aifang
    Zhang, Weiwei
    Gao, Qiang
    Zhang, Juren
    PLANT CELL TISSUE AND ORGAN CULTURE, 2010, 101 (01) : 65 - 78
  • [5] How glycine betaine induces tolerance of cucumber plants to salinity stress?
    Estaji, A.
    Kalaji, H. M.
    Karimi, H. R.
    Roosta, H. R.
    Moosavi-Nezhad, S. M.
    PHOTOSYNTHETICA, 2019, 57 (03) : 753 - 761
  • [6] Seed treatment with glycine betaine enhances tolerance of cotton to chilling stress
    Cheng, C.
    Pei, L. M.
    Yin, T. T.
    Zhang, K. W.
    JOURNAL OF AGRICULTURAL SCIENCE, 2018, 156 (03): : 323 - 332
  • [7] Glycine betaine modulates extracellular polymeric substances to enhance microbial salinity tolerance
    Xia, Yan
    Jiang, Xinbai
    Guo, Shuaishuai
    Wang, Yuxuan
    Mu, Yang
    Shen, Jinyou
    ENVIRONMENTAL SCIENCE AND ECOTECHNOLOGY, 2024, 20
  • [8] Expression of betaine aldehyde dehydrogenase gene and salinity tolerance in rice transgenic plants
    郭岩
    张莉
    肖岗
    曹守云
    谷冬梅
    田文忠
    陈受宜
    Science in China(Series C:Life Sciences), 1997, (05) : 496 - 501
  • [9] Expression of betaine aldehyde dehydrogenase gene and salinity tolerance in rice transgenic plants
    Yan Guo
    Li Zhang
    Gang Xiao
    Shouyun Cao
    Dongmei Gu
    Wenzhong Tian
    Shouyi Chen
    Science in China Series C: Life Sciences, 1997, 40 : 496 - 501
  • [10] Expression of betaine aldehyde dehydrogenase gene and salinity tolerance in rice transgenic plants
    Guo, Y
    Zhang, L
    Xiao, G
    Cao, SY
    Gu, DM
    Tian, WZ
    Chen, SY
    SCIENCE IN CHINA SERIES C-LIFE SCIENCES, 1997, 40 (05): : 496 - 501