LncRNA TCONS_00021861 is functionally associated with drought tolerance in rice (Oryza sativa L.) via competing endogenous RNA regulation

被引:54
作者
Chen, Jiajia [1 ]
Zhong, Yuqing [1 ]
Qi, Xin [1 ]
机构
[1] Suzhou Univ Sci & Technol, Sch Chem & Life Sci, 1 Kerui Rd, Suzhou 215011, Peoples R China
基金
中国国家自然科学基金;
关键词
Drought stress; lncRNA; Network; ceRNA; IAA; RESISTANCE; ARABIDOPSIS-YUCCA6; IDENTIFICATION; TRANSCRIPTS; PHENOTYPES; STRESS;
D O I
10.1186/s12870-021-03195-z
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Background Water deficit is an abiotic stress that retards plant growth and destabilizes crop production. Long non coding RNAs (lncRNAs) are a class of non-coding endogenous RNAs that participate in diverse cellular processes and stress responses in plants. lncRNAs could function as competing endogenous RNAs (ceRNA) and represent a novel layer of gene regulation. However, the regulatory mechanism of lncRNAs as ceRNA in drought stress response is yet unclear. Results In this study, we performed transcriptome-wide identification of drought-responsive lncRNAs in rice. Thereafter, we constructed a lncRNA-mediated ceRNA network by analyzing competing relationships between mRNAs and lncRNAs based on ceRNA hypothesis. A drought responsive ceRNA network with 40 lncRNAs, 23 miRNAs and 103 mRNAs was obtained. Network analysis revealed TCONS_00021861/miR528-3p/YUCCA7 regulatory axis as a hub involved in drought response. The miRNA-target expression and interaction were validated by RT-qPCR and RLM-5'RACE. TCONS_00021861 showed significant positive correlation (r = 0.7102) with YUCCA7 and negative correlation with miR528-3p (r = -0.7483). Overexpression of TCONS_00021861 attenuated the repression of miR528-3p on YUCCA7, leading to increased IAA (Indole-3-acetic acid) content and auxin overproduction phenotypes. Conclusions TCONS_00021861 could regulate YUCCA7 by sponging miR528-3p, which in turn activates IAA biosynthetic pathway and confer resistance to drought stress. Our findings provide a new perspective of the regulatory roles of lncRNAs as ceRNAs in drought resistance of rice.
引用
收藏
页数:12
相关论文
共 39 条
  • [1] A large increase in IAA during development of rice grains correlates with the expression of tryptophan aminotransferase OsTAR1 and a grain-specific YUCCA
    Abu-Zaitoon, Yousef M.
    Bennett, Karina
    Normanly, Jennifer
    Nonhebel, Heather M.
    [J]. PHYSIOLOGIA PLANTARUM, 2012, 146 (04) : 487 - 499
  • [2] Dehydration Stress-Responsive miRNA in Brachypodium distachyon: Evident by Genome-Wide Screening of microRNAs Expression
    Budak, Hikmet
    Akpinar, Ani
    [J]. OMICS-A JOURNAL OF INTEGRATIVE BIOLOGY, 2011, 15 (11) : 791 - 799
  • [3] Genome-wide analysis of long non-coding RNAs affecting roots development at an early stage in the rice response to cadmium stress
    Chen, Liang
    Shi, Shilai
    Jiang, Ninfei
    Khanzada, Hira
    Wassan, Ghulam Mustafa
    Zhu, Changlan
    Peng, Xiaosong
    Xu, Jie
    Chen, Yujin
    Yu, Qiuying
    He, Xiaopeng
    Fu, Junru
    Chen, Xiaorong
    Hu, Lifang
    Ouyang, Linjuan
    Sun, Xiaotang
    He, Haohua
    Bian, Jianmin
    [J]. BMC GENOMICS, 2018, 19
  • [4] Floral dip:: a simplified method for Agrobacterium-mediated transformation of Arabidopsis thaliana
    Clough, SJ
    Bent, AF
    [J]. PLANT JOURNAL, 1998, 16 (06) : 735 - 743
  • [5] Genome-Wide Identification of lncRNAs and Analysis of ceRNA Networks During Tomato Resistance to Phytophthora infestans
    Cui, Jun
    Jiang, Ning
    Hou, Xinxin
    Wu, Sihan
    Zhang, Qiang
    Meng, Jun
    Luan, Yushi
    [J]. PHYTOPATHOLOGY, 2020, 110 (02) : 456 - 464
  • [6] Non-coding RNAs having strong positive interaction with mRNAs reveal their regulatory nature during flowering in a wild relative of pigeonpea (Cajanus scarabaeoides)
    Das, Antara
    Saxena, Swati
    Kumar, Kuldeep
    Tribhuvan, Kishor U.
    Singh, N. K.
    Gaikwad, Kishor
    [J]. MOLECULAR BIOLOGY REPORTS, 2020, 47 (05) : 3305 - 3317
  • [7] Identification of Gossypium hirsutum long non-coding RNAs (lncRNAs) under salt stress
    Deng, Fenni
    Zhang, Xiaopei
    Wang, Wei
    Yuan, Rui
    Shen, Fafu
    [J]. BMC PLANT BIOLOGY, 2018, 18
  • [8] Characterization of long non-coding RNAs involved in cadmium toxic response in Brassica napus
    Feng, Sheng Jun
    Zhang, Xian Duo
    Liu, Xue Song
    Tan, Shang Kun
    Chu, Shan Shan
    Meng, Jin Guo
    Zhao, Kai Xuan
    Zheng, Jian Feng
    Yang, Zhi Min
    [J]. RSC ADVANCES, 2016, 6 (85) : 82157 - 82173
  • [9] Genetic Interactions between Chromosomes 11 and 18 Contribute to Airway Hyperresponsiveness in Mice
    Ferreira, Caroline M.
    Chen, James L.
    Li, Jianrong
    Shimomura, Kazuhiro
    Yang, Xinan
    Lussier, Yves A.
    Pinto, Lawrence H.
    Solway, Julian
    [J]. PLOS ONE, 2012, 7 (01): : 100 - 106
  • [10] Target mimicry provides a new mechanism for regulation of microRNA activity
    Franco-Zorrilla, Jose Manuel
    Valli, Adrian
    Todesco, Marco
    Mateos, Isabel
    Puga, Maria Isabel
    Rubio-Somoza, Ignacio
    Leyva, Antonio
    Weigel, Detlef
    Garcia, Juan Antonio
    Paz-Ares, Javier
    [J]. NATURE GENETICS, 2007, 39 (08) : 1033 - 1037