Mapping of the loci controlling oleic and linolenic acid contents and development of fad2 and fad3 allele-specific markers in canola (Brassica napus L.)

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作者
Xueyi Hu
Mandy Sullivan-Gilbert
Manju Gupta
Steven A. Thompson
机构
[1] Dow AgroSciences,
[2] LLC,undefined
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关键词
Linkage Group; Amplify Fragment Length Polymorphism; Simple Sequence Repeat Marker; Doubled Haploid; Doubled Haploid Line;
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摘要
The quality of canola oil is determined by its constituent fatty acids such as oleic acid (C18:1), linoleic acid (C18:2) and linolenic acid (C18:3). Most canola cultivars normally produce oil with about 55–65% oleic acid and 8–12% linolenic acid. High concentrations of linolenic acid lead to oil instability and off-type flavor, while high levels of oleic acid increase oxidative stability and nutritional value of oil. Therefore, development of canola cultivars with increased oleic acid and reduced linolenic acid is highly desirable for canola oil quality. In this study, we have mapped one locus that has a major effect and one locus that has a minor effect for high oleic acid and two loci that have major effects for low linolenic acid in a doubled haploid population. The major locus for high C18:1 was proven to be the fatty acid desaturase-2 (fad2) gene and it is located on the linkage group N5; the minor locus is located on N1. One major QTL for C18:3 is the fatty acid desaturase-3 gene of the genome C (fad3c) and it is located on N14. The second major QTL resides on N4 and is the fad3a gene of the A genome. We have sequenced genomic clones of the fad2 and fad3c genes amplified from an EMS-induced mutant and a wild-type canola cultivar. A comparison of the mutant and wild-type allele sequences of the fad2 and fad3c genes revealed single nucleotide mutations in each of the genes. Detailed sequence analyses suggested mechanisms by which both the mutations can cause altered fatty acid content. Based on the sequence differences between the mutant and wild-type alleles, two single nucleotide polymorphism (SNP) markers, corresponding to the fad2 and fad3c gene mutations, were developed. These markers will be highly useful for direct selection of desirable fad2 and fad3c alleles during marker-assisted trait introgression and breeding of canola with high oleic and low linolenic acid.
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页码:497 / 507
页数:10
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  • [1] Mapping of the loci controlling oleic and linolenic acid contents and development of fad2 and fad3 allele-specific markers in canola (Brassica napus L.)
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    Gupta, Manju
    Thompson, Steven A.
    [J]. THEORETICAL AND APPLIED GENETICS, 2006, 113 (03) : 497 - 507
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    Qingyong Yang
    Chuchuan Fan
    Zhenhua Guo
    Jie Qin
    Jianzhong Wu
    Qingyuan Li
    Tingdong Fu
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    [J]. Theoretical and Applied Genetics, 2012, 125 : 715 - 729
  • [3] Identification of FAD2 and FAD3 genes in Brassica napus genome and development of allele-specific markers for high oleic and low linolenic acid contents
    Yang, Qingyong
    Fan, Chuchuan
    Guo, Zhenhua
    Qin, Jie
    Wu, Jianzhong
    Li, Qingyuan
    Fu, Tingdong
    Zhou, Yongming
    [J]. THEORETICAL AND APPLIED GENETICS, 2012, 125 (04) : 715 - 729
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    Wu, Haoxue
    Zhang, Xiaohan
    Chen, Xiaoyu
    Li, Kang
    Xu, Aixia
    Huang, Zhen
    Dong, Jungang
    Yu, Chengyu
    [J]. PHYTON-INTERNATIONAL JOURNAL OF EXPERIMENTAL BOTANY, 2024, 93 (03) : 627 - 640
  • [5] Biotechnology of α-linolenic acid in oilseed rape(Brassica napus)using FAD2 and FAD3 from chia(Salvia hispanica)
    XUE Yu-fei
    Inkabanga Tseke ALAIN
    YIN Neng-wen
    JIANG Jia-yi
    ZHAO Yan-ping
    LU Kun
    LI Jia-na
    DING Yan-song
    ZHANG Shi-qing
    CHAI You-rong
    [J]. Journal of Integrative Agriculture, 2023, 22 (12) : 3810 - 3815
  • [6] Biotechnology of α-linolenic acid in oilseed rape (Brassica napus) using FAD2 and FAD3 from chia (Salvia hispanica)
    Xue, Yu-fei
    Alain, Inkabanga Tseke
    Yin, Neng-wen
    Jiang, Jia-yi
    Zhao, Yan-ping
    Lu, Kun
    Li, Jia-na
    Ding, Yan-song
    Zhang, Shi-qing
    Chai, You-rong
    [J]. JOURNAL OF INTEGRATIVE AGRICULTURE, 2023, 22 (12) : 3810 - 3815
  • [7] Combinations of mutant FAD2 and FAD3 genes to produce high oleic acid and low linolenic acid soybean oil
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    [J]. Theoretical and Applied Genetics, 2012, 125 : 503 - 515
  • [8] Combinations of mutant FAD2 and FAD3 genes to produce high oleic acid and low linolenic acid soybean oil
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    [J]. THEORETICAL AND APPLIED GENETICS, 2012, 125 (03) : 503 - 515
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    [J]. PLOS ONE, 2014, 9 (05):
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    [J]. Russian Journal of Genetics, 2015, 51 : 765 - 773