Co-expression of genes ApGSMT2 and ApDMT2 for glycinebetaine synthesis in maize enhances the drought tolerance of plants

被引:0
作者
Chunmei He
Ying He
Qiang Liu
Tieshan Liu
Chunxiao Liu
Liming Wang
Juren Zhang
机构
[1] Shandong Academy of Agricultural Sciences/National Maize Improvement Sub-Center,Maize Institute
[2] Shandong University,School of Life Sciences
来源
Molecular Breeding | 2013年 / 31卷
关键词
Maize; Transgene; Drought tolerance; and ;
D O I
暂无
中图分类号
学科分类号
摘要
Glycinebetaine plays an important role in the protection mechanism of many plants under various stress conditions. In this study, genetically engineered maize plants with an enhanced ability to synthesise glycinebetaine (GB) were produced by introducing two genes, glycine sarcosine methyltransferase gene (ApGSMT2) and dimethylglycine methyltransferase gene (ApDMT2), from the bacterium Aphanothece halophytica. Southern blotting and RT-PCR analysis demonstrated that the two genes were integrated into the maize genome and expressed. The increased expression levels of ApGSMT2 and ApDMT2 under drought conditions facilitated GB accumulation in the leaves of transgenic maize plants and conferred improved drought tolerance. Under drought conditions, the transgenic plants showed an increased accumulation of sugars and free amino acids, greater chlorophyll content, a higher photosynthesis rate and biomass, and lower malondialdehyde and electrolyte leakage compared to the wild-type; these results suggest that GB provides vital protection against drought stress. Under normal conditions, the transgenic plants did not show decreased biomass and productivity, which indicated that the co-expression of ApGSMT2 and ApDMT2 in maize plays an important role in its tolerance to drought stress and does not lead to detrimental effects. It was concluded that the co-expression of ApGSMT2 and ApDMT2 in maize is an effective approach to enhancing abiotic stress tolerance in maize breeding programmes.
引用
收藏
页码:559 / 573
页数:14
相关论文
共 142 条
  • [1] Armengaud P(2004)Transcriptional regulation of proline biosynthesis in Physiol Plant 120 442-450
  • [2] Thiery L(1949) reveals developmental and environmental specific features Plant Physiol 24 1-15
  • [3] Buhot N(1982)Copper enzymes in isolated chloroplasts: polyphenoloxidase in Science 218 443-448
  • [4] Grenier-De March G(2000)Plant productivity and environment Trends Plant Sci 5 187-188
  • [5] Savouré A(2005)Drought stress inhibits photosynthesis by decreasing stomatal aperture—not by affecting ATP synthesis J Biosci 30 761-776
  • [6] Arnon DI(2010)Sugar signalling and gene expression in relation to carbohydrate metabolism under abiotic stresses in plants Mol Biol Rep 38 657-666
  • [7] Boyer JS(2011)Heterologous expression of Euphytica 177 151-167
  • [8] Cornic G(2001) and Amino Acids 20 243-259
  • [9] Gupta AK(2000) genes from J Exp Bot 51 177-185
  • [10] Kaur N(2000) enhanced drought tolerance in transgenic tobacco Plant Physiol 122 747-756