Photosynthetic response and transcriptomic profiling provide insights into the alkali tolerance of clone halophyte Leymus chinensis

被引:8
作者
Wang, H. [1 ]
Xiang, Y. [1 ]
Li, L. H. [2 ]
Bhanbhro, N. [2 ]
Yang, C. W. [2 ]
Zhang, Z. [1 ]
机构
[1] Jilin Agr Univ, Dept Agron, Changchun 130118, Peoples R China
[2] Northeast Normal Univ, Minist Educ, Key Lab Mol Epigenet, Changchun 130024, Peoples R China
基金
中国博士后科学基金; 中国国家自然科学基金;
关键词
osmotic adjustment; PacBio sequencing; pigments; RNAseq; PUCCINELLIA-TENUIFLORA; SALT TOLERANCE; SALINITY TOLERANCE; PHYSIOLOGICAL-RESPONSES; OSMOTIC ADJUSTMENT; PROTEOMIC ANALYSIS; GENE-EXPRESSION; RICE; STRESSES; GROWTH;
D O I
10.32615/ps.2020.027
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Alkali stress is one of the important factors in restricting agriculture production. Leymus chinensis is constructive halophyte species in alkalized grassland in China. In order to investigate the gene expression response of L. chinensis to alkali stress, we used PacBio technology to obtain reference full-length transcript sequences for transcriptomic analysis of alkali stress response. In order to elucidate the alkali tolerance mechanisms of L. chinensis, we measured the photosynthetic parameters, concentrations of ions and compatible solutes, chloroplast ultrastructure and anatomy of control and stressed plants. Our results showed that L. chinensis shares many alkali-tolerance mechanisms with glycophytes. Higher stability of photosynthetic apparatus under alkali stress may be prominent alkali-tolerance trait of L. chinensis. L. chinensis may have a strong capacity to decline the toxicity of Na+ to organelles and cytoplasmic proteins. Enhanced expression of dehydrin and LEA genes and increased accumulation of carbohydrates may contribute to the development of Na+-specific stress tolerance of L. chinensis under alkali stress.
引用
收藏
页码:780 / 789
页数:10
相关论文
共 53 条
[1]   Progress and perspective on drought and salt stress tolerance in cotton [J].
Abdelraheem, Abdelraheem ;
Esmaeili, Nardana ;
O'Connell, Mary ;
Zhang, Jinfa .
INDUSTRIAL CROPS AND PRODUCTS, 2019, 130 :118-129
[2]  
[Anonymous], 1993, LAB MANUAL PLANT PHY
[3]   Ectopic Expression of the K+ Channel β Subunits from Puccinellia tenuiflora (KPutB1) and Rice (KOB1) Alters K+ Homeostasis of Yeast and Arabidopsis [J].
Ardie, Sintho Wahyuning ;
Nishiuchi, Shunsaku ;
Liu, Shenkui ;
Takano, Tetsuo .
MOLECULAR BIOTECHNOLOGY, 2011, 48 (01) :76-86
[4]   Expression of the AKT1-type K+ channel gene from Puccinellia tenuiflora, PutAKT1, enhances salt tolerance in Arabidopsis [J].
Ardie, Sintho Wahyuning ;
Liu, Shenkui ;
Takano, Tetsuo .
PLANT CELL REPORTS, 2010, 29 (08) :865-874
[5]   Cloning of a high-affinity K+ transporter gene PutHKT2;1 from Puccinellia tenuiflora and its functional comparison with OsHKT2;1 from rice in yeast and Arabidopsis [J].
Ardie, Sintho Wahyuning ;
Xie, Lina ;
Takahashi, Ryuichi ;
Liu, Shenkui ;
Takano, Tetsuo .
JOURNAL OF EXPERIMENTAL BOTANY, 2009, 60 (12) :3491-3502
[6]   Intracellular glasses and seed survival in the dry state [J].
Buitink, Julia ;
Leprince, Olivier .
COMPTES RENDUS BIOLOGIES, 2008, 331 (10) :788-795
[7]   Molecular and physiological aspects of nitrate uptake in plants [J].
Crawford, NM ;
Glass, ADM .
TRENDS IN PLANT SCIENCE, 1998, 3 (10) :389-395
[8]   Could vesicular transport of Na+ and Cl- be a feature of salt tolerance in halophytes? [J].
Flowers, Timothy J. ;
Glenn, Edward P. ;
Volkov, Vadim .
ANNALS OF BOTANY, 2019, 123 (01) :1-18
[9]   Evolution of halophytes: multiple origins of salt tolerance in land plants [J].
Flowers, Timothy J. ;
Galal, Hanaa K. ;
Bromham, Lindell .
FUNCTIONAL PLANT BIOLOGY, 2010, 37 (07) :604-612
[10]   Breeding for salinity resistance in crop plants: Where next? [J].
Flowers, TJ ;
Yeo, AR .
AUSTRALIAN JOURNAL OF PLANT PHYSIOLOGY, 1995, 22 (06) :875-884