Fine mapping and candidate gene analysis of a seed glucosinolate content QTL, qGSL-C2, in rapeseed (Brassica napus L.)

被引:24
作者
Liu, Ying [1 ]
Zhou, Xianming [1 ]
Yan, Min [1 ]
Wang, Pengfei [1 ]
Wang, Hao [1 ]
Xin, Qiang [1 ]
Yang, Liyong [2 ]
Hong, Dengfeng [1 ]
Yang, Guangsheng [1 ]
机构
[1] Huazhong Agr Univ, Natl Key Lab Crop Genet Improvement, Wuhan 430070, Peoples R China
[2] Shanghai Acad Agr Sci, Shanghai 201403, Peoples R China
关键词
QUANTITATIVE TRAIT LOCI; GENOME-WIDE ASSOCIATION; TRANSCRIPTION FACTORS; COORDINATED CONTROL; OIL CONTENT; BIOSYNTHESIS; IDENTIFICATION; ARCHITECTURE; REVEALS; MAP;
D O I
10.1007/s00122-019-03479-x
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Key message QTL mapping and candidate gene analysis indicate that allelic variations in BnaC2.MYB28 resulted from homeologous exchange and determine difference in seed glucosinolate content. A low seed glucosinolate content has long been an important breeding objective in rapeseed improvement. However, the molecular mechanisms underlying seed GSL content variations remain to be elucidated in allotetraploid Brassica napus. Here, we developed a double haploid population from a cross between two B. napus accessions that possess relatively low, but significantly different seed GSL contents and identified a major QTL, qGSL-C2, on chromosome C02 that explains 30.88-72.87% of the phenotypic variation observed in five environments. Using near-isogenic lines, we further delimited qGSL-C2 to a physical region of 49 kb on the B. rapa chromosome A02 which is highly homologous to the target C02 interval. Among five candidate genes, BnaC2.MYB28, a homologue of the Arabidopsis MYB28 encoding a putative R2R3-MYB-type transcription factor functioning in aliphatic methionine-derived GSL synthesis, was most likely to be the target gene underlying the QTL. Sequence analysis revealed multiple insertion/deletion and SNP variations in the genomic region between the alleles of the NILs. Furthermore, the allelic variations in BnaC2.MYB28 in the natural B. napus population were significantly associated with seed GSL content. Remarkably, the phylogenetic analysis and sequence comparison suggested that while the BnaC2.MYB28 allele from the parental line G120 was inherited from B. oleracea BolC2.MYB28, its counterpart from the other parent, 9172, most likely evolved from B. rapa BraA2.MYB28 via possible homeologous exchange. Our study promotes greater understanding of the molecular regulation of seed GSL content and provides useful molecular markers for seed GSL improvement in B. napus.
引用
收藏
页码:479 / 490
页数:12
相关论文
共 50 条
  • [21] QTL Analysis of the Oil Content and the Hull Content in Brassica napus L.
    JIN Meng-yang1
    Agricultural Sciences in China, 2007, (04) : 414 - 421
  • [22] Genetic dissection of flowering time and fine mapping of qFT.A02-1 in rapeseed (Brassica napus L.)
    Li, Yanling
    Li, Xin
    Du, Dezhi
    Ma, Qianru
    Zhao, Zhi
    Wang, Long
    Zhang, Yongshun
    Shi, Huiqin
    Zhao, Hongping
    Li, Huaxin
    Pei, Damei
    Zhao, Zhigang
    Tang, Guoyong
    Liu, Haidong
    Li, Haojie
    Xiao, Lu
    THEORETICAL AND APPLIED GENETICS, 2025, 138 (04)
  • [23] Joint QTL mapping and transcriptome sequencing analysis reveal candidate flowering time genes in Brassica napus L
    Jian, Hongju
    Zhang, Aoxiang
    Ma, Jinqi
    Wang, Tengyue
    Yang, Bo
    Shuang, Lan Shuan
    Liu, Min
    Li, Jiana
    Xu, Xinfu
    Paterson, Andrew H.
    Liu, Liezhao
    BMC GENOMICS, 2019, 20 (1)
  • [24] Heterosis for Seed Yield, Oil Content and Other Characters in Rapeseed (Brassica napus L.)
    LAOSUWAN Paisan
    MACHIKOWA Thitiporn
    Journal of Northeast Agricultural University(English Edition), 2010, 17 (01) : 1 - 9
  • [25] QTL Mapping and Transcriptome Analysis Reveal Candidate Genes Regulating Seed Color in Brassica napus
    Liu, Fangying
    Chen, Hao
    Yang, Liu
    You, Liang
    Ju, Jianye
    Yang, Shujie
    Wang, Xiaolin
    Liu, Zhongsong
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2023, 24 (11)
  • [26] Seed longevity in oilseed rape (Brassica napus L.) - genetic variation and QTL mapping
    Nagel, Manuela
    Rosenhauer, Maria
    Willner, Evelin
    Snowdon, Rod J.
    Friedt, Wolfgang
    Boerner, Andreas
    PLANT GENETIC RESOURCES-CHARACTERIZATION AND UTILIZATION, 2011, 9 (02): : 260 - 263
  • [27] QTL analysis and candidate gene prediction for seed density per silique by QTL-seq and RNA-seq in spring Brassica napus L.
    Xing, Xiaorong
    Liu, Haidong
    Ye, Jingxiu
    Yao, Yanmei
    Li, Kaixiang
    Li, Yanling
    Du, Dezhi
    PLOS ONE, 2023, 18 (03):
  • [28] High-density ddRAD linkage and yield-related QTL mapping delimits a chromosomal region responsible for oil content in rapeseed (Brassica napus L.)
    Chen, Jun
    Wang, Bo
    Zhang, Yueli
    Yue, Xiaopeng
    Li, Zhaohong
    Liu, Kede
    BREEDING SCIENCE, 2017, 67 (03) : 296 - 306
  • [29] Fine mapping of a minor QTL on chromosome 2 controlling flowering time in Brassica napus L
    Cai, Dongfang
    Zhang, Shufen
    Wang, Jianping
    He, Junping
    Yi, Licong
    Zhu, Jiacheng
    GENETIC RESOURCES AND CROP EVOLUTION, 2022, 69 (03) : 1137 - 1146
  • [30] Fine mapping of the epistatic suppressor gene (esp) of a recessive genic male sterility in rapeseed (Brassica napus L.)
    Xu, Zhenghua
    Xie, Yanzhou
    Hong, Dengfeng
    Liu, Pingwu
    Yang, Guangsheng
    GENOME, 2009, 52 (09) : 755 - 760