Overexpression of the OsChI1 gene, encoding a putative laccase precursor, increases tolerance to drought and salinity stress in transgenic Arabidopsis

被引:56
作者
Cho, Hyun Yong [1 ]
Lee, Chanhui [2 ]
Hwang, Sun-Goo [1 ]
Park, Yong Chan [1 ]
Lim, Hye Lee [1 ]
Jang, Cheol Seong [1 ]
机构
[1] Kangwon Natl Univ, Dept Appl Plant Sci, Plant Genom Lab, Chunchon 200713, South Korea
[2] Kyung Hee Univ, Dept Plant & Environm New Resources, Yongin 446701, South Korea
关键词
Chilling inducible gene; Copper protein; Abiotic stress; Subcellular localization; Heterogeneous expression; WGCNA; Coexpression network; LOW-TEMPERATURE STRESS; COEXPRESSION NETWORK; ABIOTIC STRESS; SALT STRESS; RICE; PLANTS; EXPRESSION; THALIANA; FAMILY; MAIZE;
D O I
10.1016/j.gene.2014.09.018
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
In a previous study, we identified a number of genes induced by chilling using a microarray approach. In order to investigate the molecular mechanism underlying chilling tolerance and possible crosstalk with other abiotic stresses, we selected a rice gene, OsChI1 (Os01g61160), for further analysis. The OsChI1 gene encodes a putative laccase precursor protein. In accordance with our previous results, its transcript is highly accumulated during a 12-day period of chilling treatment. Higher expression of the OsChI1 gene was also detected in roots and tissues at the vegetative and productive stages. In addition, we also observed increased transcript levels of the OsChI1 gene during dehydration and high salinity conditions. Transient expression of OsChI1 proteins tagged with fluorescence protein in rice protoplasts revealed that OsChI1 is localized in the plasma membrane. The Arabidopsis transgenic plants overexpressing OsChI1-EGFP resulted in an increased tolerance to drought and salinity stress. In silico analysis of OsChI1 suggests that several genes coexpressed with OsChI1 in the root during various abiotic stresses, such as chilling, drought and salt stress, may play an important role in the ROS signaling pathway. Potential roles of OsChI1 in response to abiotic stresses are discussed. (C) 2014 Elsevier B.V. All rights reserved.
引用
收藏
页码:98 / 105
页数:8
相关论文
共 49 条
[31]   Gene structure and molecular analysis of the laccase-like multicopper oxidase (LMCO) gene family in Arabidopsis thaliana [J].
McCaig, BC ;
Meagher, RB ;
Dean, JFD .
PLANTA, 2005, 221 (05) :619-636
[32]   Abiotic stress, the field environment and stress combination [J].
Mittler, R .
TRENDS IN PLANT SCIENCE, 2006, 11 (01) :15-19
[33]   A multicolored set of in vivo organelle markers for co-localization studies in Arabidopsis and other plants [J].
Nelson, Brook K. ;
Cai, Xue ;
Nebenfuehr, Andreas .
PLANT JOURNAL, 2007, 51 (06) :1126-1136
[34]   Flavonoid oxidation in plants: from biochemical properties to physiological functions [J].
Pourcel, Lucille ;
Routaboul, Jean-Marc ;
Cheynier, Veronique ;
Lepiniec, Loic ;
Debeaujon, Isabelle .
TRENDS IN PLANT SCIENCE, 2007, 12 (01) :29-36
[35]  
Sanghera GS, 2011, CURR GENOMICS, V12, P30, DOI 10.2174/138920211794520178
[36]   ANTIMICROBIAL PROPERTIES OF TANNINS [J].
SCALBERT, A .
PHYTOCHEMISTRY, 1991, 30 (12) :3875-3883
[37]   The Arabidopsis SKU5 gene encodes an extracellular glycosyl phosphatidylinositol-anchored glycoprotein involved in directional root growth [J].
Sedbrook, JC ;
Carroll, KL ;
Hung, KF ;
Masson, PH ;
Somerville, CR .
PLANT CELL, 2002, 14 (07) :1635-1648
[38]   Cytoscape: A software environment for integrated models of biomolecular interaction networks [J].
Shannon, P ;
Markiel, A ;
Ozier, O ;
Baliga, NS ;
Wang, JT ;
Ramage, D ;
Amin, N ;
Schwikowski, B ;
Ideker, T .
GENOME RESEARCH, 2003, 13 (11) :2498-2504
[39]   Recent Advances in Dissecting Stress-Regulatory Crosstalk in Rice [J].
Sharma, Rita ;
De Vleesschauwer, David ;
Sharma, Manoj K. ;
Ronald, Pamela C. .
MOLECULAR PLANT, 2013, 6 (02) :250-260
[40]   A gene-coexpression network for global discovery of conserved genetic modules [J].
Stuart, JM ;
Segal, E ;
Koller, D ;
Kim, SK .
SCIENCE, 2003, 302 (5643) :249-255