Profiling of drought-responsive microRNA and mRNA in tomato using high-throughput sequencing

被引:80
作者
Liu, Minmin [1 ]
Yu, Huiyang [1 ]
Zhao, Gangjun [1 ]
Huang, Qiufeng [1 ]
Lu, Yongen [1 ]
Ouyang, Bo [1 ]
机构
[1] Huazhong Agr Univ, Key Lab Hort Plant Biol MOE, Wuhan 430070, Peoples R China
来源
BMC GENOMICS | 2017年 / 18卷
基金
中国国家自然科学基金;
关键词
Tomato; microRNA; RNA-Seq; Drought; Introgression line; STRESS-REGULATED MICRORNAS; SUPPRESSION SUBTRACTIVE HYBRIDIZATION; ABIOTIC STRESS; CYSTEINE PROTEINASES; ARABIDOPSIS-THALIANA; TRANSCRIPTION FACTOR; IMPORTANT ROLES; IDENTIFICATION; TOLERANCE; GENE;
D O I
10.1186/s12864-017-3869-1
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Background: Abiotic stresses cause severe loss of crop production. Among them, drought is one of the most frequent environmental stresses, which limits crop growth, development and productivity. Plant drought tolerance is fine-tuned by a complex gene regulatory network. Understanding the molecular regulation of this polygenic trait is crucial for the eventual success to improve plant yield and quality. Recent studies have demonstrated that microRNAs play critical roles in plant drought tolerance. However, little is known about the microRNA in drought response of the model plant tomato. Here, we described the profiling of drought-responsive microRNA and mRNA in tomato using high-throughput next-generation sequencing. Results: Drought stress was applied on the seedlings of M82, a drought-sensitive cultivated tomato genotype, and IL9-1, a drought-tolerant introgression line derived from the stress-resistant wild species Solanum pennellii LA0716 and M82. Under drought, IL9-1 performed superior than M82 regarding survival rate, H2O2 elimination and leaf turgor maintenance. A total of four small RNA and eight mRNA libraries were constructed and sequenced using Illumina sequencing technology. 105 conserved and 179 novel microRNAs were identified, among them, 54 and 98 were differentially expressed upon drought stress, respectively. The majority of the differentially-expressed conserved microRNAs was up-regulated in IL9-1 whereas down-regulated in M82. Under drought stress, 2714 and 1161 genes were found to be differentially expressed in M82 and IL9-1, respectively, and many of their homologues are involved in plant stress, such as genes encoding transcription factor and protein kinase. Various pathways involved in abiotic stress were revealed by Gene Ontology and pathway analysis. The mRNA sequencing results indicated that most of the target genes were regulated by their corresponding microRNAs, which suggested that microRNAs may play essential roles in the drought tolerance of tomato. Conclusion: In this study, numerous microRNAs and mRNAs involved in the drought response of tomato were identified using high-throughput sequencing, which will provide new insights into the complex regulatory network of plant adaption to drought stress. This work will also help to exploit new players functioning in plant drought-stress tolerance.
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页数:18
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共 102 条
  • [1] Plant molecular stress responses face climate change
    Ahuja, Ishita
    de Vos, Ric C. H.
    Bones, Atle M.
    Hall, Robert D.
    [J]. TRENDS IN PLANT SCIENCE, 2010, 15 (12) : 664 - 674
  • [2] Root precursors of microRNAs in wild emmer and modern wheats show major differences in response to drought stress
    Akpinar, Bala Ani
    Kantar, Melda
    Budak, Hikmet
    [J]. FUNCTIONAL & INTEGRATIVE GENOMICS, 2015, 15 (05) : 587 - 598
  • [3] Association mapping reveals the genetic architecture of tomato response to water deficit: focus on major fruit quality traits
    Albert, Elise
    Segura, Vincent
    Gricourt, Justine
    Bonnefoi, Julien
    Derivot, Laurent
    Causse, Mathilde
    [J]. JOURNAL OF EXPERIMENTAL BOTANY, 2016, 67 (22) : 6413 - 6430
  • [4] Resolution by recombination: breaking up Solanum pennellii introgressions
    Alseekh, Saleh
    Ofner, Itai
    Pleban, Tzili
    Tripodi, Pasquale
    Di Dato, Francesco
    Cammareri, Maria
    Mohammad, Ayed
    Grandillo, Silvana
    Fernie, Alisdair R.
    Zamir, Dani
    [J]. TRENDS IN PLANT SCIENCE, 2013, 18 (10) : 536 - 538
  • [5] Large-scale analysis of full-length cDNAs from the tomato (Solanum lycopersicum) cultivar Micro-Tom, a reference system for the Solanaceae genomics
    Aoki, Koh
    Yano, Kentaro
    Suzuki, Ayako
    Kawamura, Shingo
    Sakurai, Nozomu
    Suda, Kunihiro
    Kurabayashi, Atsushi
    Suzuki, Tatsuya
    Tsugane, Taneaki
    Watanabe, Manabu
    Ooga, Kazuhide
    Torii, Maiko
    Narita, Takanori
    Shin-i, Tadasu
    Kohara, Yuji
    Yamamoto, Naoki
    Takahashi, Hideki
    Watanabe, Yuichiro
    Egusa, Mayumi
    Kodama, Motoichiro
    Ichinose, Yuki
    Kikuchi, Mari
    Fukushima, Sumire
    Okabe, Akiko
    Arie, Tsutomu
    Sato, Yuko
    Yazawa, Katsumi
    Satoh, Shinobu
    Omura, Toshikazu
    Ezura, Hiroshi
    Shibata, Daisuke
    [J]. BMC GENOMICS, 2010, 11
  • [6] Isolation and characterization of osmotic stress-induced genes in poplar cells by suppression subtractive hybridization and cDNA microarray analysis
    Bae, Eun-Kyung
    Lee, Hyoshin
    Lee, Jae-Soon
    Noh, Eun-Woon
    [J]. PLANT PHYSIOLOGY AND BIOCHEMISTRY, 2010, 48 (2-3) : 136 - 141
  • [7] High throughput sequencing reveals novel and abiotic stress-regulated microRNAs in the inflorescences of rice
    Barrera-Figueroa, Blanca E.
    Gao, Lei
    Wu, Zhigang
    Zhou, Xuefeng
    Zhu, Jianhua
    Jin, Hailing
    Liu, Renyi
    Zhu, Jian-Kang
    [J]. BMC PLANT BIOLOGY, 2012, 12
  • [8] MicroRNAs: Genomics, biogenesis, mechanism, and function (Reprinted from Cell, vol 116, pg 281-297, 2004)
    Bartel, David P.
    [J]. CELL, 2007, 131 (04) : 11 - 29
  • [9] The enigmatic LEA proteins and other hydrophilins
    Battaglia, Marina
    Olvera-Carrillo, Yadira
    Garciarrubio, Alejandro
    Campos, Francisco
    Covarrubias, Alejandra A.
    [J]. PLANT PHYSIOLOGY, 2008, 148 (01) : 6 - 24
  • [10] Distinctive expression patterns and roles of the miRNA393/TIR1 homolog module in regulating flag leaf inclination and primary and crown root growth in rice (Oryza sativa)
    Bian, Hongwu
    Xie, Yakun
    Guo, Fu
    Han, Ning
    Ma, Shengyun
    Zeng, Zhanghui
    Wang, Junhui
    Yang, Yinong
    Zhu, Muyuan
    [J]. NEW PHYTOLOGIST, 2012, 196 (01) : 149 - 161