Genome-Wide Analysis of microRNA Expression Profile in Roots and Leaves of Three Wheat Cultivars under Water and Drought Conditions

被引:4
作者
Gomez-Martin, Cristina [1 ]
Zhou, Hui [2 ]
Medina, Jose Maria [3 ,4 ]
Aparicio-Puerta, Ernesto [5 ]
Shi, Bujun [2 ]
Hackenberg, Michael [3 ,4 ,6 ,7 ]
机构
[1] Vrije Univ Amsterdam, Amsterdam UMC, Canc Ctr Amsterdam, Dept Pathol, NL-1081 HV Amsterdam, Netherlands
[2] Univ Adelaide, Sch Agr Food & Wine, Urrbrae, SA 5064, Australia
[3] Univ Granada, Genet Dept, Computat Genom & Bioinformat Grp, Granada 18071, Spain
[4] Ctr Invest Biomed, Biotechnol Inst, Bioinformat Lab, PTS, Avda Conocimiento S-N, Granada 18100, Spain
[5] Saarland Univ, Chair Clin Bioinformat, D-66123 Saarbrucken, Germany
[6] Univ Granada, Inst Invest Biosanit ibs GRANADA, Granada 18071, Spain
[7] Univ Granada, Excellence Res Unit Modelling Nat MNat, Granada 18071, Spain
关键词
miRNAs; wheat; tissue-specific; genome conservation; differential expression; miRNA function; drought; Kukri; RAC875; Excalibur; STRESS-RESPONSIVE MICRORNAS; SMALL RNAS; REGULATED MICRORNAS; BARLEY; FAMILY;
D O I
10.3390/biom13030440
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
Wheat is one of the most important food sources on Earth. MicroRNAs (miRNAs) play important roles in wheat productivity. To identify wheat miRNAs as well as their expression profiles under drought condition, we constructed and sequenced small RNA (sRNA) libraries from the leaves and roots of three wheat cultivars (Kukri, RAC875 and Excalibur) under water and drought conditions. A total of 636 known miRNAs and 294 novel miRNAs were identified, of which 34 miRNAs were tissue- or cultivar-specific. Among these, 314 were significantly regulated under drought conditions. miRNAs that were drought-regulated in all cultivars displayed notably higher expression than those that responded in a cultivar-specific manner. Cultivar-specific drought response miRNAs were mainly detected in roots and showed significantly different drought regulations between cultivars. By using wheat degradome library, 6619 target genes were identified. Many target genes were strongly enriched for protein domains, such as MEKHLA, that play roles in drought response. Targeting analysis showed that drought-downregulated miRNAs targeted more genes than drought-upregulated miRNAs. Furthermore, such genes had more important functions. Additionally, the genes targeted by drought-downregulated miRNAs had multiple interactions with each other, while the genes targeted by drought-upregulated miRNAs had no interactions. Our data provide valuable information on wheat miRNA expression profiles and potential functions in different tissues, cultivars and drought conditions.
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页数:19
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共 55 条
[21]   Characterization of phosphorus-regulated miR399 and miR827 and their isomirs in barley under phosphorus-sufficient and phosphorus-deficient conditions [J].
Hackenberg, Michael ;
Shi, Bu-Jun ;
Gustafson, Perry ;
Langridge, Peter .
BMC PLANT BIOLOGY, 2013, 13
[22]   A Transgenic Transcription Factor (TaDREB3) in Barley Affects the Expression of MicroRNAs and Other Small Non-Coding RNAs [J].
Hackenberg, Michael ;
Shi, Bu-Jun ;
Gustafson, Perry ;
Langridge, Peter .
PLOS ONE, 2012, 7 (08)
[23]   Sputum Exosomal microRNAs Profiling Reveals Critical Pathways Modulated By Pseudomonas aeruginosa Colonization In Bronchiectasis [J].
Huang, Yan ;
Chen, Chun-lan ;
Yuan, Jing-jing ;
Li, Hui-min ;
Han, Xiao-rong ;
Chen, Rong-chang ;
Guan, Wei-jie ;
Zhong, Nan-shan .
INTERNATIONAL JOURNAL OF CHRONIC OBSTRUCTIVE PULMONARY DISEASE, 2019, 14 :2563-2573
[24]   Gene silencing by microRNAs: contributions of translational repression and mRNA decay [J].
Huntzinger, Eric ;
Izaurralde, Elisa .
NATURE REVIEWS GENETICS, 2011, 12 (02) :99-110
[25]   miRNA expression patterns of Triticum dicoccoides in response to shock drought stress [J].
Kantar, Melda ;
Lucas, Stuart J. ;
Budak, Hikmet .
PLANTA, 2011, 233 (03) :471-484
[26]   Regulation of barley miRNAs upon dehydration stress correlated with target gene expression [J].
Kantar, Melda ;
Unver, Turgay ;
Budak, Hikmet .
FUNCTIONAL & INTEGRATIVE GENOMICS, 2010, 10 (04) :493-507
[27]   Regulation of mRNA decay in plant responses to salt and osmotic stress [J].
Kawa, Dorota ;
Testerink, Christa .
CELLULAR AND MOLECULAR LIFE SCIENCES, 2017, 74 (07) :1165-1176
[28]   miRBase: from microRNA sequences to function [J].
Kozomara, Ana ;
Birgaoanu, Maria ;
Griffiths-Jones, Sam .
NUCLEIC ACIDS RESEARCH, 2019, 47 (D1) :D155-D162
[29]   Identification of novel soybean microRNAs involved in abiotic and biotic stresses [J].
Kulcheski, Franceli R. ;
de Oliveira, Luiz F. V. ;
Molina, Lorrayne G. ;
Almerao, Mauricio P. ;
Rodrigues, Fabiana A. ;
Marcolino, Juliana ;
Barbosa, Joice F. ;
Stolf-Moreira, Renata ;
Nepomuceno, Alexandre L. ;
Marcelino-Guimaraes, Francismar C. ;
Abdelnoor, Ricardo V. ;
Nascimento, Leandro C. ;
Carazzolle, Marcelo F. ;
Pereira, Goncalo A. G. ;
Margis, Rogerio .
BMC GENOMICS, 2011, 12
[30]   Transcription factors: An overview [J].
Latchman, DS .
INTERNATIONAL JOURNAL OF BIOCHEMISTRY & CELL BIOLOGY, 1997, 29 (12) :1305-1312