A grape bHLH transcription factor gene, VvbHLH1, increases the accumulation of flavonoids and enhances salt and drought tolerance in transgenic Arabidopsis thaliana

被引:0
作者
Feibing Wang
Hong Zhu
Dahu Chen
Zhenjun Li
Rihe Peng
Quanhong Yao
机构
[1] Shanghai Academy of Agricultural Sciences,Shanghai Key Laboratory of Agricultural Genetic Breeding, Biotech Research Institute
[2] China Agricultural University,Beijing Key Laboratory of Crop Genetic Improvement/Laboratory of Crop Heterosis and Utilization, Ministry of Education
[3] Shanghai Agrobiological Gene Center,undefined
来源
Plant Cell, Tissue and Organ Culture (PCTOC) | 2016年 / 125卷
关键词
ABA; Flavonoids; Grape; Salt and drought tolerance;
D O I
暂无
中图分类号
学科分类号
摘要
In plants, transcriptional regulation is the most important tool for modulating flavonoid biosynthesis. The basic helix-loop-helix transcription factors are only one example how then flavonoid pathway is regulated. There are other transcription factors as well. In this study, the codon-optimized VvbHLH1 gene from grape was chemically synthesized. Overexpression of VvbHLH1 significantly increased the accumulation of flavonoids and enhanced salt and drought tolerance in transgenic Arabidopsis thaliana plants. Real-time quantitative PCR analysis showed that overexpression of VvbHLH1 resulted in the up-regulation of genes involved in flavonoid biosynthesis, abscisic acid (ABA) signaling pathway, proline biosynthesis, stress responses and ROS scavenging under salt and drought stresses. Further analyses under salt and drought stresses showed significant increases of ABA and proline content, superoxide dismutase and peroxidase activities, as well as significant reduction of hydrogen peroxide (H2O2) and malonaldehyde content. The results demonstrate the explicit role of VvbHLH1 in conferring salt and drought tolerance by increasing the accumulation of flavonoids and ABA signalling in transgenic A. thaliana. The VvbHLH1 gene has the potential to be used to increase the content of valuable flavonoids and improve the tolerance to abiotic stresses in A. thaliana and other plants.
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页码:387 / 398
页数:11
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  • [1] Abraham E(2003)Light-dependent induction of proline biosynthesis by absiscic acid and salt stress is inhibited by brassinosteroid in Plant Mol Biol 51 363-372
  • [2] Rigo G(2001)The effect of drought and ultraviolet radiation on growth and stress markers in pea and wheat Plant Cell Environ 24 1337-1344
  • [3] Szekely G(2001)Effect of proline on the production of singlet oxygen Amino Acids 21 195-200
  • [4] Nagy R(2004), a Plant Sci 166 855-862
  • [5] Koncz C(2006) gene from barley confers dehydration tolerance in transgenic rice ( Food Chem 99 191-203
  • [6] Szabados L(2015) L.) via cell membrane protection Growth Regul 176 232-240
  • [7] Alexieva V(2009)Phenolic compounds in plants and agri-industrial by-products: antioxidant activity, occurrence, and potential uses Plant Sci 7 1099-1111
  • [8] Sergiev I(1995)Group II late embryogenesis abundant (LEA) proteins: structural and functional aspects in plant abiotic stress Plant Plant Cell 52 98-111
  • [9] Mapelli S(2010)Overexpression of the J Integr Plant Biol 26 1301-1308
  • [10] Karanov E(2008) H Nat Biotechnol 139 137-145