The Rice GLYCINE-RICH PROTEIN 3 Confers Drought Tolerance by Regulating mRNA Stability of ROS Scavenging-Related Genes

被引:32
作者
Shim, Jae Sung [1 ,2 ]
Park, Su-Hyun [1 ,3 ]
Lee, Dong-Keun [1 ,4 ]
Kim, Youn Shic [1 ,5 ]
Park, Soo-Chul [1 ,6 ]
Redillas, Mark Christian Felipe R. [7 ]
Seo, Jun Sung [1 ]
Kim, Ju-Kon [1 ]
机构
[1] Seoul Natl Univ, Crop Biotechnol Inst, GreenBio Sci & Technol, Pyeongchang 25354, South Korea
[2] Chonnam Natl Univ, Sch Biol Sci & Technol, Gwangju 61186, South Korea
[3] Natl Univ Singapore, Temasek Life Sci Lab, 1 Res Link, Singapore 117604, Singapore
[4] E GREEN GLOBAL, Gunpo 15843, South Korea
[5] Kangwon Natl Univ, Agr & Life Sci Res Inst, Chunchon 24341, South Korea
[6] Natl Acad Agr Sci, Dept Agr Biotechnol, Rural Dev Adm, Jeonju 54874, South Korea
[7] De La Salle Univ, Dept Biol, Manila 0922, Philippines
关键词
OsGRP3; Drought tolerance; Cytoplasmic foci; RNA-IP; mRNA stability;
D O I
10.1186/s12284-021-00473-0
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Background Plant glycine-rich proteins are categorized into several classes based on their protein structures. The glycine-rich RNA binding proteins (GRPs) are members of class IV subfamily possessing N-terminus RNA-recognition motifs (RRMs) and proposed to be involved in post-transcriptional regulation of its target transcripts. GRPs are involved in developmental process and cellular stress responses, but the molecular mechanisms underlying these regulations are still elusive. Results Here, we report the functional characterization of rice GLYCINE-RICH PROTEIN 3 (OsGRP3) and its physiological roles in drought stress response. Both drought stress and ABA induce the expression of OsGRP3. Transgenic plants overexpressing OsGRP3 (OsGRP3(OE)) exhibited tolerance while knock-down plants (OsGRP3(KD)) were susceptible to drought compared to the non-transgenic control. In vivo, subcellular localization analysis revealed that OsGRP3-GFP was transported from cytoplasm/nucleus into cytoplasmic foci following exposure to ABA and mannitol treatments. Comparative transcriptomic analysis between OsGRP3(OE) and OsGRP3(KD) plants suggests that OsGRP3 is involved in the regulation of the ROS related genes. RNA-immunoprecipitation analysis revealed the associations of OsGRP3 with PATHOGENESIS RELATED GENE 5 (PR5), METALLOTHIONEIN 1d (MT1d), 4,5-DOPA-DIOXYGENASE (DOPA), and LIPOXYGENASE (LOX) transcripts. The half-life analysis showed that PR5 transcripts decayed slower in OsGRP3(OE) but faster in OsGRP3(KD), while MT1d and LOX transcripts decayed faster in OsGRP3(OE) but slower in OsGRP3(KD) plants. H2O2 accumulation was reduced in OsGRP3(OE) and increased in OsGRP3(KD) plants compared to non-transgenic plants (NT) under drought stress. Conclusion OsGRP3 plays a positive regulator in rice drought tolerance and modulates the transcript level and mRNA stability of stress-responsive genes, including ROS-related genes. Moreover, OsGRP3 contributes to the reduction of ROS accumulation during drought stress. Our results suggested that OsGRP3 alleviates ROS accumulation by regulating ROS-related genes' mRNA stability under drought stress, which confers drought tolerance.
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页数:19
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共 67 条
[1]   Pathogenesis-related proteins and peptides as promising tools for engineering plants with multiple stress tolerance [J].
Ali, Sajad ;
Ganai, Bashir Ahmad ;
Kamili, Azra N. ;
Bhat, Ajaz Ali ;
Mir, Zahoor Ahmad ;
Bhat, Javaid Akhter ;
Tyagi, Anshika ;
Islam, Sheikh Tajamul ;
Mushtaq, Muntazir ;
Yadav, Prashant ;
Rawat, Sandhya ;
Grover, Anita .
MICROBIOLOGICAL RESEARCH, 2018, 212 :29-37
[2]   Characterization of three members of the Arabidopsis carotenoid cleavage dioxygenase family demonstrates the divergent roles of this multifunctional enzyme family [J].
Auldridge, ME ;
Block, A ;
Vogel, JT ;
Dabney-Smith, C ;
Mila, I ;
Bouzayen, M ;
Magallanes-Lundback, M ;
DellaPenna, D ;
McCarty, DR ;
Klee, HJ .
PLANT JOURNAL, 2006, 45 (06) :982-993
[3]   The Arabidopsis tandem CCCH zinc finger proteins AtTZF4, 5 and 6 are involved in light-, abscisic acid- and gibberellic acid- mediated regulation of seed germination [J].
Bogamuwa, Srimathi ;
Jang, Jyan-Chyun .
PLANT CELL AND ENVIRONMENT, 2013, 36 (08) :1507-1519
[4]   Trimmomatic: a flexible trimmer for Illumina sequence data [J].
Bolger, Anthony M. ;
Lohse, Marc ;
Usadel, Bjoern .
BIOINFORMATICS, 2014, 30 (15) :2114-2120
[5]   Polysomes, Stress Granules, and Processing Bodies: A Dynamic Triumvirate Controlling Cytoplasmic mRNA Fate and Function [J].
Chantarachot, Thanin ;
Bailey-Serres, Julia .
PLANT PHYSIOLOGY, 2018, 176 (01) :254-269
[6]   Characterization and Expression Analysis of Four Glycine-Rich RNA-Binding Proteins Involved in Osmotic Response in Tobacco (Nicotiana tabacum cv. Xanthi) [J].
Chen Xuan ;
Zeng Qian-chun ;
Lu Xiu-ping ;
Yu Di-qiu ;
Li Wen-zheng .
AGRICULTURAL SCIENCES IN CHINA, 2010, 9 (11) :1577-1587
[7]   The evolutionarily conserved multifunctional glycine-rich RNA-binding proteins play key roles in development and stress adaptation [J].
Ciuzan, Oana ;
Hancock, John ;
Pamfil, Doru ;
Wilson, Ian ;
Ladomery, Michael .
PHYSIOLOGIA PLANTARUM, 2015, 153 (01) :1-11
[8]   A GENE ENCODING A NOVEL GLYCINE-RICH STRUCTURAL PROTEIN OF PETUNIA [J].
CONDIT, CM ;
MEAGHER, RB .
NATURE, 1986, 323 (6084) :178-181
[9]   Plant Glycine-Rich Proteins in Stress Response: An Emerging, Still Prospective Story [J].
Czolpinska, Magdalena ;
Rurek, Michal .
FRONTIERS IN PLANT SCIENCE, 2018, 9
[10]   OsLEA3-2, an Abiotic Stress Induced Gene of Rice Plays a Key Role in Salt and Drought Tolerance [J].
Duan, Jianli ;
Cai, Weiming .
PLOS ONE, 2012, 7 (09)