Genome-wide identification and expression analysis of DREB genes in alfalfa (Medicago sativa) in response to cold stress

被引:17
作者
Sheng, Song [1 ]
Guo, Xinyu [1 ]
Wu, Changzheng [1 ]
Xiang, Yucheng [1 ]
Duan, Shuhui [1 ,2 ]
Yang, Weiqin [1 ]
Li, Wenrui
Cao, Fengchun
Liu, Laihua [1 ]
机构
[1] China Agr Univ, Coll Resources & Environm Sci, Ctr Resources Environm & Food Secur, Key Lab Plant Soil Interact, Beijing, Peoples R China
[2] Hunan Tobacco Sci Inst, Changsha, Peoples R China
关键词
Medicago sativa; DREB protein; transcription factor; phylogenetic tree; cold stress; expression profiling; TRANSCRIPTION FACTORS; BINDING; TOLERANCE; DEHYDRATION; ACCLIMATION; PATHWAYS; SEQUENCE; DROUGHT; PLANTS; WHEAT;
D O I
10.1080/15592324.2022.2081420
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Dehydration-responsive element-binding proteins (DREBs) belong to members of the AP2/ERF transcription factor superfamily, which has been reported to involve various abiotic-stress responses and tolerance in plants. However, research on the DREB-family is still limited in alfalfa (Medicago sativa L.), a forage legume cultivated worldwide. The recent genome-sequence release of the alfalfa cultivar "XinJiangDaYe" allowed us to identify 172 DREBs by a multi-step homolog search. The phylogenetic analysis indicated that such MsDREBs could be classified into 5 groups, namely A-1 (56 members), A-2 (39), A-3 (3), A-4 (61) and 13 (A-5 (13), thus adding substantial new members to the DREB-family in alfalfa. Furthermore, a comprehensive survey in silico of conserved motif, gene structure, molecular weight, and isoelectric point (pI) as well as gene expression was conducted. The resulting data showed that, for cold-stress response, 33 differentially expressed MsDREBs were identified with a threshold of Log2-fold > 1, and most of which were transcriptionally upregulated within 48 h during a cold treatment(s). Moreover, the expression profiling of MsDREBs from two ecotypes of alfalfa subspecies i.e. M. sativa ssp. falcata (F56, from a colder region of Central Asia) and M. sativa ssp. sativa (B47, from Near East) revealed that most of the cold-stress responsive MsDREBs exhibited a significantly lower expression in F56, leading to a proposal of the existence of a distinct mechanism(s) for cold tolerance regulated by DREB-related action, which would have been evolved in alfalfa with a genotypic specificity. Additionally, by examining the transcriptome of a freezing-tolerance species (M. sativa cv. Zhaodong), eight DREBs were found to be implicated in a long-term freezing-stress adaptation with a great potential. Taken together, the current genome-wide identification in alfalfa points to the importance of some MsDREBs in the cold-stress response, providing some promising molecular targets to be functionally characterized for the improvement of cold tolerance in crops including alfalfa.
引用
收藏
页数:10
相关论文
共 45 条
[1]   Overexpression of PgDREB2A transcription factor enhances abiotic stress tolerance and activates downstream stress-responsive genes [J].
Agarwal, Parinita ;
Agarwal, Pradeep K. ;
Joshi, Arvind J. ;
Sopory, Sudhir K. ;
Reddy, Malireddy K. .
MOLECULAR BIOLOGY REPORTS, 2010, 37 (02) :1125-1135
[2]   Role of DREB transcription factors in abiotic and biotic stress tolerance in plants [J].
Agarwal, Pradeep K. ;
Agarwal, Parinita ;
Reddy, M. K. ;
Sopory, Sudhir K. .
PLANT CELL REPORTS, 2006, 25 (12) :1263-1274
[3]   Plant Low-Temperature Stress: Signaling and Response [J].
Aslam, Mohammad ;
Fakher, Beenish ;
Ashraf, Mohammad Arif ;
Cheng, Yan ;
Wang, Bingrui ;
Qin, Yuan .
AGRONOMY-BASEL, 2022, 12 (03)
[4]   The MEME Suite [J].
Bailey, Timothy L. ;
Johnson, James ;
Grant, Charles E. ;
Noble, William S. .
NUCLEIC ACIDS RESEARCH, 2015, 43 (W1) :W39-W49
[5]   PLANT PRODUCTIVITY AND ENVIRONMENT [J].
BOYER, JS .
SCIENCE, 1982, 218 (4571) :443-448
[6]   Characterization of the AP2/ERF Transcription Factor Family and Expression Profiling of DREB Subfamily under Cold and Osmotic Stresses in Ammopiptanthus nanus [J].
Cao, Shilin ;
Wang, Ying ;
Li, Xuting ;
Gao, Fei ;
Feng, Jinchao ;
Zhou, Yijun .
PLANTS-BASEL, 2020, 9 (04)
[7]   Rethinking false spring risk [J].
Chamberlain, Catherine J. ;
Cook, Benjamin I. ;
de Cortazar-Atauri, Inaki Garcia ;
Wolkovich, Elizabeth M. .
GLOBAL CHANGE BIOLOGY, 2019, 25 (07) :2209-2220
[8]   Allele-aware chromosome-level genome assembly and efficient transgene-free genome editing for the autotetraploid cultivated alfalfa [J].
Chen, Haitao ;
Zeng, Yan ;
Yang, Yongzhi ;
Huang, Lingli ;
Tang, Bolin ;
Zhang, He ;
Hao, Fei ;
Li, Wei ;
Li, Youhan ;
Liu, Yanbin ;
Zhang, Xiaoshuang ;
Zhang, Ru ;
Zhang, Yesheng ;
Li, Yongxin ;
Wang, Kun ;
He, Hua ;
Wang, Zhongkai ;
Fan, Guangyi ;
Yang, Hui ;
Bao, Aike ;
Shang, Zhanhuan ;
Chen, Jianghua ;
Wang, Wen ;
Qiu, Qiang .
NATURE COMMUNICATIONS, 2020, 11 (01)
[9]   DREB1C from Medicago truncatula enhances freezing tolerance in transgenic M. truncatula and China Rose (Rosa chinensis Jacq.) [J].
Chen, Ji-Ren ;
Lue, Jing-Jing ;
Liu, Rong ;
Xiong, Xing-Yao ;
Wang, Tian-xiang ;
Chen, Shou-Yi ;
Guo, Lan-Bin ;
Wang, Hua-Fang .
PLANT GROWTH REGULATION, 2010, 60 (03) :199-211
[10]   Molecular Regulation of Plant Responses to Environmental Temperatures [J].
Ding, Yanglin ;
Shi, Yiting ;
Yang, Shuhua .
MOLECULAR PLANT, 2020, 13 (04) :544-564