The response mechanism of the HVA1 gene in hulless barley under drought stress

文献类型: 外文期刊

第一作者: Yao, Xiaohua

作者: Yao, Xiaohua;Wu, Kunlun;Yao, Youhua;Li, Jie;Ren, Youcheng;Chi, Dezhao;Yao, Xiaohua;Wu, Kunlun;Yao, Youhua;Li, Jie;Ren, Youcheng;Chi, Dezhao;Yao, Xiaohua;Wu, Kunlun;Yao, Youhua;Ren, Youcheng;Chi, Dezhao

作者机构:

关键词: Drought stress;Expression level;Hulless barley;HVA1

期刊名称:ITALIAN JOURNAL OF AGRONOMY ( 影响因子:2.3; 五年影响因子:1.773 )

ISSN: 1125-4718

年卷期: 2017 年 12 卷 4 期

页码:

收录情况: SCI

摘要: HVA1, a member of LEA3 (late embryogenesis abundant protein, group 3), is closely related to water stress. However, the response of HVA1 to drought remains unknown in hulless barley. In this study, cultivars with high (Handizi), intermediate (Kunlun 12), and low (Dama) drought tolerance were selected from 28 hulless barley cultivars from the Tibet-Qinghai plateau to explore the drought response mechanism of HVA1. Then, HVA1 was cloned and the expression of the three cultivars was studied using exposure to polyethylene glycol (PEG) 6000. HVA1s in the three hulless barleys were highly homologous at the nucleotide and amino acid levels with over 99% identity. Real-time quantitative polymerase chain reaction showed that the expression level of HVA1 induced by PEG 6000 had a single peak curve in the three cultivars, but higher HVA1 transcript accumulation was seen in Handizi than in Kunlun 12 and Dama under the same drought stress. This result was also proved in eight hulless barleys. The expression level was a better predictor of drought resistance than the genetic structure of HVA1.

分类号:

  • 相关文献

[1]Exogenously Applied Nitric Oxide Enhances the Drought Tolerance in Hulless Barley. Zhong, Yan,Wu, Xiaoli. 2015

[2]A Comparative Study on the Population Fitness of Three Strains of Nilaparvata lugens (Hemiptera: Delphacidae) Differ in Eye Color-Related Genes. Liu, Shuhua,Wu, Jincai,Liu, Shuhua,Yang, Baojun,Luo, Ju,Tang, Jian.

[3]Up- and Down-regulated Expression of OsCPK25/26 Results in Increased Number of Stamens in Rice. Zhang, Wei,Zhou, Fei,Chen, Hao,Li, Xianghua,Lin, Yongjun,Zhang, Wei,Zhou, Fei,Chen, Hao,Li, Xianghua,Lin, Yongjun,Wan, Bingliang.

[4]A microsatellite diversity analysis and the development of core-set germplasm in a large hulless barley (Hordeum vulgare L.) collection. Xu, Qijun,Zeng, Xingquan,Lin, Bin,Yuan, Hongjun,Wang, Yulin,Zhasang,Tashi, Nyima,Xu, Qijun,Zeng, Xingquan,Lin, Bin,Yuan, Hongjun,Wang, Yulin,Zhasang,Tashi, Nyima,Li, Zeqing. 2017

[5]The complete mitochondrial genome of Tibetan hulless barley. Wang, Yu Lin,Wei, Ze Xiu,Xu, Qi Jun,Zeng, Xing Quan,Yuan, Hong Jun,Tang, Ya Wei,Tashi, Nyima,Wang, Yu Lin,Wei, Ze Xiu,Xu, Qi Jun,Zeng, Xing Quan,Yuan, Hong Jun,Tang, Ya Wei,Tashi, Nyima,Wang, Yu Lin,Xu, Qi Jun,Zeng, Xing Quan,Yuan, Hong Jun,Tang, Ya Wei,Wei, Ze Xiu. 2016

[6]Allelopathic effects of Hulless barley (Hordeum vulgare L.) on rape (Brassica campestris L.). Li, W.,Shen, S.,Guo, Q. Y.,Li, W.,Shen, S.,Guo, Q. Y.,Li, W.,Shen, S.,Guo, Q. Y.,Li, W.,Shen, S.,Guo, Q. Y..

[7]Transcriptomics analysis of hulless barley during grain development with a focus on starch biosynthesis. Zeng, Xingquan,Wang, Yulin,Xu, Qijun,Wei, Zexiu,Yuan, Hongjun,Nyima, Tashi,Tang, Yawei,Zeng, Xingquan,Wang, Yulin,Xu, Qijun,Wei, Zexiu,Yuan, Hongjun,Nyima, Tashi,Tang, Yawei,Zeng, Xingquan,Wang, Yulin,Bai, Lijun,Xu, Qijun,Wei, Zexiu,Yuan, Hongjun.

[8]ZmFKBP20-1 improves the drought and salt tolerance of transformed Arabidopsis. Yu, Yanli,Li, Yanjiao,Zhao, Meng,Li, Wencai,Sun, Qi,Li, Wenlan,Meng, Zhaodong,Jia, Fengjuan,Jia, Fengjuan,Li, Nana. 2017

[9]Single-base resolution methylomes of upland cotton (Gossypium hirsutum L.) reveal epigenome modifications in response to drought stress. Xuke Lu,Ye, Wuwei,Xiaoge Wang,Xiugui Chen,Na Shu,Junjuan Wang,Delong Wang,Shuai Wang,Weili Fan,Lixue Guo,Xiaoning Guo,Wuwei Ye. 2017

[10]An ethylene response factor (ERF5) promoting adaptation to drought and salt tolerance in tomato. Pan, Yu,Hu, Zongli,Chen, Guoping,Pan, Yu,Seymour, Graham B.,Lu, Chungui,Chen, Xuqing. 2012

[11]Soil water repellency of the artificial soil and natural soil in rocky slopes as affected by the drought stress and polyacrylamide. Chen, Zhang,Wang, Ruixin,Han, Pengyuan,Sun, Hailong,Sun, Haifeng,Li, Chengjun,Yang, Lixia. 2018

[12]Arabidopsis C3HC4-RING finger E3 ubiquitin ligase AtAIRP4 positively regulates stress-responsive abscisic acid signaling. Liu, Qiaohong,Liu, Zhibin,Yang, Hao,Wang, Jianmei,Li, Xufeng,Yang, Yi,Yang, Liang. 2016

[13]Reference genes for quantitative real-time PCR analysis and quantitative expression of P5CS in Agropyron mongolicum under drought stress. Tian Qing-song,Du Jian-cai,Han Bing,Wang Shu-yan,Wu Zhi-juan,Li Xiao-quan,Han Bing. 2016

[14]RdreB1BI enhances drought tolerance by activating AQP-related genes in transgenic strawberry. Gu, Xianbin,Gao, Zhihong,Yan, Yichao,Qiao, Yushan,Gu, Xianbin,Chen, Yahua,Wang, Xiuyun,Gu, Xianbin. 2017

[15]Overexpressing IbCBF3 increases low temperature and drought stress tolerance in transgenic sweetpotato. Jin, Rong,Kim, Beg Hab,Ji, Chang Yoon,Kim, Ho Soo,Kwak, Sang-Soo,Jin, Rong,Ji, Chang Yoon,Kwak, Sang-Soo,Jin, Rong,Kim, Ho Soo,Ma, Dai Fu. 2017

[16]Effects of Exogenous Chitosan on Physiological Characteristics of Potato Seedlings Under Drought Stress and Rehydration. Jiao, Zhili,Li, Yong,Lu, Dianqiu,Li, Juanjuan,Xu, Xiaoyan,Wang, Jingying,Li, Hui. 2012

[17]VfCPK1, a gene encoding calcium-dependent protein kinase from Vicia faba, is induced by drought and abscisic acid. Liu, Guanshan,Chen, Jia,Wang, Xuechen. 2006

[18]ATP-Citrate Lyase Gene (SoACLA-1), a Novel ACLA Gene in Sugarcane, and Its Overexpression Enhance Drought Tolerance of Transgenic Tobacco. Li, Jian,Sun, Bo,Liu, Jia-Yi,Zhao, Wen-Hui,Huang, Chan,Yang, Li-Tao,Li, Yang-Rui,Yang, Li-Tao,Li, Yang-Rui. 2017

[19]The NAC-like transcription factor. SINAC110 in foxtail millet (Setaria italica L.) confers tolerance to drought and high salt stress through an ABA independent signaling pathway. Xie Li-na,Min Dong-hong,Feng Lu,Xu Dong-bei,Chen Ming,Xu Zhao-shi,Zhou Yong-bin,Li Lian-cheng,Ma You-zhi,Zhang Xiao-hong. 2017

[20]Morphological and physiological responses of Heteropogon contortus to drought stress in a dry-hot valley. Wang, Xue-mei,Yan, Bang-guo,Liu, Gang-cai,Wang, Xue-mei,Yan, Bang-guo,Zhao, Li,Shi, Liang-tao,He, Yu-xiao. 2016

作者其他论文 更多>>