Genome-wide identification and expression of GRAS gene family members in cassava

被引:48
作者
Shan, Zhongying [1 ,3 ]
Luo, Xinglu [1 ,2 ]
Wu, Meiyan [1 ]
Wei, Limei [1 ]
Fan, Zhupeng [1 ]
Zhu, Yanmei [1 ]
机构
[1] Guangxi Univ, Coll Agr, Nanning 530005, Peoples R China
[2] State Key Lab Conservat & Utilizat Subtrop Agrobi, Nanning 530004, Peoples R China
[3] Dezhou Univ, Coll Ecol & Garden Architecture, Dezhou 253023, Peoples R China
关键词
Cassava; GRAS genes; Gene expression; Abiotic stress; SCARECROW-LIKE; 3; SIGNALING PATHWAY; SHORT-ROOT; ARABIDOPSIS; PROTEINS; STRESS; GROWTH; DELLA; RICE; ACCUMULATION;
D O I
10.1186/s12870-020-2242-8
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Background Cassava is highly tolerant to stressful conditions, especially drought stress conditions; however, the mechanisms underlying this tolerance are poorly understood. The GRAS gene family is a large family of transcription factors that are involved in regulating the growth, development, and stress responses of plants. Currently, GRAS transcription factors have not been systematically studied in cassava, which is the sixth most important crop in the world. Results Seventy-seven MeGRAS genes were identified from the cassava genome database. Phylogenetic analysis revealed that the MeGRAS proteins could be divided into 14 subfamilies. The gene structure and motif compositions of the proteins were considerably conserved within the same subfamily. Duplication events, particularly segmental duplication, were identified as the main driving force for GRAS gene expansion in cassava. Global expression analysis revealed that MeGRAS genes exhibited similar or distinct expression profiles within different tissues among different varieties. Moreover, qRT-PCR analysis revealed the expression patterns of MeGRAS genes in response to abiotic stress (drought, salt, cold, and H2O2), and the results suggest that these genes may have multiple functions. Conclusion This study is the first to provide comprehensive information on GRAS gene family members in cassava. The data will increase our understanding of both the molecular basis and the effects of GRAS genes. In addition, the results will contribute further to identifying the responses to various environmental conditions and provide insights into the potential functions of GRAS genes.
引用
收藏
页数:16
相关论文
共 58 条
[11]   Cassava biology and physiology [J].
El-Sharkawy, MA .
PLANT MOLECULAR BIOLOGY, 2004, 56 (04) :481-501
[12]   Identification, Classification, and Expression Analysis of GRAS Gene Family in Malus domestica [J].
Fan, Sheng ;
Zhang, Dong ;
Gao, Cai ;
Zhao, Ming ;
Wu, Haiqin ;
Li, Youmei ;
Shen, Yawen ;
Han, Mingyu .
FRONTIERS IN PHYSIOLOGY, 2017, 8
[13]   STRING v9.1: protein-protein interaction networks, with increased coverage and integration [J].
Franceschini, Andrea ;
Szklarczyk, Damian ;
Frankild, Sune ;
Kuhn, Michael ;
Simonovic, Milan ;
Roth, Alexander ;
Lin, Jianyi ;
Minguez, Pablo ;
Bork, Peer ;
von Mering, Christian ;
Jensen, Lars J. .
NUCLEIC ACIDS RESEARCH, 2013, 41 (D1) :D808-D815
[14]  
Fraser PD, 2016, ASSESSING DIVERSITY
[15]   Physiological Investigation and Transcriptome Analysis of Polyethylene Glycol (PEG)-Induced Dehydration Stress in Cassava [J].
Fu, Lili ;
Ding, Zehong ;
Han, Bingying ;
Hu, Wei ;
Li, Yajun ;
Zhang, Jiaming .
INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2016, 17 (03)
[16]   Molecular analysis of the LATERAL SUPPRESSOR gene in Arabidopsis reveals a conserved control mechanism for axillary meristem formation [J].
Greb, T ;
Clarenz, O ;
Schäfer, E ;
Müller, D ;
Herrero, R ;
Schmitz, G ;
Theres, K .
GENES & DEVELOPMENT, 2003, 17 (09) :1175-1187
[17]   Structural and Functional Analysis of the GRAS Gene Family in Grapevine Indicates a Role of GRAS Proteins in the Control of Development and Stress Responses [J].
Grimplet, Jerome ;
Agudelo-Romero, Patricia ;
Teixeira, Rita T. ;
Martinez-Zapater, Jose M. ;
Fortes, Ana M. .
FRONTIERS IN PLANT SCIENCE, 2016, 7
[18]   Identification and expression of GRAS family genes in maize (Zea mays L.) [J].
Guo, Yuyu ;
We, Hongyu ;
Li, Xiang ;
Li, Qi ;
Zhao, Xinyan ;
Duan, Xueqing ;
An, Yanrong ;
Lv, Wei ;
An, Hailong .
PLOS ONE, 2017, 12 (09)
[19]   The SHORT-ROOT gene controls radial patterning of the Arabidopsis root through radial signaling [J].
Helariutta, Y ;
Fukaki, H ;
Wysocka-Diller, J ;
Nakajima, K ;
Jung, J ;
Sena, G ;
Hauser, MT ;
Benfey, PN .
CELL, 2000, 101 (05) :555-567
[20]   Funneling of gibberellin signaling by the GRAS transcription regulator SCARECROW-LIKE 3 in the Arabidopsis root [J].
Heo, Jung-Ok ;
Chang, Kwang Suk ;
Kim, In A. ;
Lee, Mi-Hyun ;
Lee, Shin Ae ;
Song, Sang-Kee ;
Lee, Myeong Min ;
Lim, Jun .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2011, 108 (05) :2166-2171