Identification and in Silico Characterization of Novel and Conserved MicroRNAs in Methyl Jasmonate-Stimulated Scots Pine (Pinus sylvestris L.) Needles

被引:4
作者
Krivmane, Baiba [1 ]
Snepste, Ilze [1 ]
Skipars, Vilnis [1 ]
Yakovlev, Igor [2 ]
Fossdal, Carl Gunnar [2 ]
Vivian-Smith, Adam [2 ]
Rungis, Dainis [1 ]
机构
[1] Latvian State Forest Res Inst Silava, Genet Resource Ctr, Riga St 111, LV-111 Salaspils, Latvia
[2] Norwegian Inst Bioecon Res, Postboks 115, NO-1431 As, Norway
来源
FORESTS | 2020年 / 11卷 / 04期
关键词
microRNA; isomiR; Scots pine; IonTorrentPGM; methyl jasmonate; precursor microRNA; SMALL RNAS; GENOME SEQUENCE; PLANT MICRORNA; ARABIDOPSIS; EXPRESSION; MIRNAS; GENES; EVOLUTION; BIOGENESIS; FAMILIES;
D O I
10.3390/f11040384
中图分类号
S7 [林业];
学科分类号
0829 ; 0907 ;
摘要
MicroRNAs (miRNAs) are non-protein coding RNAs of similar to 20-24 nucleotides in length that play an important role in many biological and metabolic processes, including the regulation of gene expression, plant growth and developmental processes, as well as responses to stress and pathogens. The aim of this study was to identify and characterize novel and conserved microRNAs expressed in methyl jasmonate-treated Scots pine needles. In addition, potential precursor sequences and target genes of the identified miRNAs were determined by alignment to the Pinus unigene set. Potential precursor sequences were identified using the miRAtool, conserved miRNA precursors were also tested for the ability to form the required stem-loop structure, and the minimal folding free energy indexes were calculated. By comparison with miRBase, 4975 annotated sequences were identified and assigned to 173 miRNA groups, belonging to a total of 60 conserved miRNA families. A total of 1029 potential novel miRNAs, grouped into 34 families were found, and 46 predicted precursor sequences were identified. A total of 136 potential target genes targeted by 28 families were identified. The majority of previously reported highly conserved plant miRNAs were identified in this study, as well as some conserved miRNAs previously reported to be monocot specific. No conserved dicot-specific miRNAs were identified. A number of potential gymnosperm or conifer specific miRNAs were found, shared among a range of conifer species.
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页数:16
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