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Miniature Inverted-repeat Transposable Elements (MITEs) as Valuable Genomic Resources for the Evolution and Breeding of Brassica Crops

Plant Breeding and Biotechnology 2014;2(4):322-333.
Published online: December 31, 2014

1Deptartment of Plant Science, Plant Genomics and Breeding Institute, and Research Institute of Agriculture and Life Sciences, College of Agriculture and Life Sciences, Seoul National University, Seoul 151-921, Republic of Korea

*Corresponding author: Tae-Jin Yang, tjyang@snu.ac.kr, Fax: +82-2881-4547
• Received: December 26, 2014   • Revised: December 27, 2014   • Accepted: December 27, 2014

Copyright © 2014 The Korean Society of Breeding Science

This is an Open-Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.

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Miniature Inverted-repeat Transposable Elements (MITEs) as Valuable Genomic Resources for the Evolution and Breeding of Brassica Crops
Plant Breed. Biotech.. 2014;2(4):322-333.   Published online December 31, 2014
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Miniature Inverted-repeat Transposable Elements (MITEs) as Valuable Genomic Resources for the Evolution and Breeding of Brassica Crops
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Miniature Inverted-repeat Transposable Elements (MITEs) as Valuable Genomic Resources for the Evolution and Breeding of Brassica Crops
Image Image Image Image
Fig. 1 Classification and structural characteristics of TEs and mTEs. LARD, large retrotransposon derivative; TRIM, terminal-repeat retrotransposons in miniature; LINE, long interspersed nuclear element; SINE, short interspersed nuclear element; GAG, a structural protein for virus-like particles; PR, protease; IN, integrase; RT, reverse transcriptase; RH, RNAse H; EN, endonuclease.
Fig. 2 Differential distribution of MITE family members in B. rapa, B. oleracea, and B. napus. MITE families with intact members were used for in silico map construction on the 256-Mb B. rapa (A), 385-Mb B. oleracea (B), and the 645-Mb B. napus pseudo-chromosome sequences, based on physical positions. The red and blue arrows indicate the syntenic regions corresponding to Figs. 3A and 3B, respectively. The arrows with and without star indicate the positions of genes that have MITE insertion and non-insertion, respectively, according to Fig. 3. The physical position information for the MITE families can be found in BrassicTED (Murukarthick et al. 2014).
Fig. 3 Micro-synteny comparison of B. rapa genomic regions containing MITE (BraSto-2) with their non-inserted orthologs (NIOs) in B. oleracea and B. napus. (A) Micro-synteny between the genomic region, showing the shared insertion of BraSto-2 in genes of B. rapa (Bra008554) and B. napus (GSBRNA2T00104271001), compared with those of its NIOs of B. oleracea (Bol016570) and B. napus (GSBRNA2T00113153001). (B) Micro-synteny between the genomic regions, showing unique insertion of BraSto-2 in B. rapa (Bra021168) gene compared with those of its NIOs of B. oleracea (Bol034764) and B. napus (GSBRNA2T00010058001 and GSBRNA2T00040182001). MITE element insertions are shown as red bars, and +/− indicate genes with MITE (M) insertion and non-insertion, respectively. The gray bars connecting boxes on genome sequences indicate syntenic blocks present in both sequences.
Fig. 4 Utility of MITEs as molecular markers. A) MITE insertion polymorphism analysis using flanking primers. Comparison of DNA fragments showing the presence or absence of MITE insertion. MITE-flanking primer positions are indicated as red arrowheads. B) Polymorphism profile by MIP analysis of 7 Brassica accessions based on BraMi-1, a Brassica MITE. AB, insertion and non-insertion (Heterozygous insertion); A, Insertion (Homozygous insertion); B, non-insertion (Homozygous non-insertion) (Sampath et al. 2013). C) Diversity analysis using different B. oleracea commercial cultivars. D) Genotyping analysis of 94 B. oleracea F2 plants from a cross between parental lines C1234 (P1) and C1184 (P2).
Miniature Inverted-repeat Transposable Elements (MITEs) as Valuable Genomic Resources for the Evolution and Breeding of Brassica Crops

Members of 20 MITE families in the B. rapa and B. oleracea pseudo-chromosome sequences.

MITE No. MITE IDz) unit size (bp) Copies in genome assemblyy)

B. rapa B. oleracea B. napus
1 BraSto-1 267 16 50 131
2 BraSto-2 260 401 210 612
3 BraSto-3 242 6 2 3
4 BraSto-4 558 97 336 374
5 BraTo-1 212 8 127 191
6 BraTo-2 366 61 60 99
7 BraTo-3 252 245 116 309
8 BraTo-4 160 287 36 257
9 BraTo-5 286 118 37 133
10 BraTo-6 257 60 76 100
11 BraTo-7 366 54 199 245
12 BraTo-8 348 29 26 32
13 BraTo-9 264 20 32 81
14 BraTo-10 255 35 50 43
15 BraTo-11 305 4 5 8
16 BraTo-12 273 66 67 80
17 BraTo-13 268 74 85 146
18 BraHAT-1 439 24 55 72
19 BraHAT-2 248 16 19 63
20 BraMu-1 271 24 16 31

Total 1645 1604 3010

z)Conserved MITE sequences were used based on previous study (Sampath et al. 2014).

y)MITE copies were identified from the available 283, 385, and 850 Mb whole-genome pseudo-chromosome sequences of B. rapa, B. oleracea and B. napus, respectively, with 80% sequence similarity.

Table 1 Members of 20 MITE families in the B. rapa and B. oleracea pseudo-chromosome sequences.

Conserved MITE sequences were used based on previous study (Sampath et al. 2014).

MITE copies were identified from the available 283, 385, and 850 Mb whole-genome pseudo-chromosome sequences of B. rapa, B. oleracea and B. napus, respectively, with 80% sequence similarity.