Whole-transcriptome analysis reveals genetic factors underlying flowering time regulation in rapeseed (Brassica napus L.)

被引:39
|
作者
Shah, Smit [1 ]
Weinholdt, Claus [2 ]
Jedrusik, Nicole [1 ]
Molina, Carlos [1 ]
Zou, Jun [3 ]
Grosse, Ivo [2 ]
Schiessl, Sarah [4 ]
Jung, Christian [1 ]
Emrani, Nazgol [1 ]
机构
[1] Christian Albrechts Univ Kiel, Plant Breeding Inst, Olshausenstr 40, D-24098 Kiel, Germany
[2] Martin Luther Univ Halle Wittenberg, Inst Comp Sci, Halle, Saale, Germany
[3] Huazhong Agr Univ, Natl Key Lab Crop Genet Improvement, Wuhan, Hubei, Peoples R China
[4] Justus Liebig Univ, IFZ Res Ctr Biosyst Land Use & Nutr, Dept Plant Breeding, Giessen, Germany
来源
PLANT CELL AND ENVIRONMENT | 2018年 / 41卷 / 08期
关键词
association analysis; differentially expressed genes; genetic mapping; pleiotropic effects; RNA-seq; vernalization; yield; LOCUS-C; VERNALIZATION; EXPRESSION; GENOME; PROTEIN; QTL; FLC; ARCHITECTURE; HOMOLOGS; PATTERNS;
D O I
10.1111/pce.13353
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Rapeseed (Brassica napus L.), one of the most important sources of vegetable oil and protein-rich meals worldwide, is adapted to different geographical regions by modification of flowering time. Rapeseed cultivars have different day length and vernalization requirements, which categorize them into winter, spring, and semiwinter ecotypes. To gain a deeper insight into genetic factors controlling floral transition in B.napus, we performed RNA sequencing (RNA-seq) in the semiwinter doubled haploid line, Ningyou7, at different developmental stages and temperature regimes. The expression profiles of more than 54,000 gene models were compared between different treatments and developmental stages, and the differentially expressed genes were considered as targets for association analysis and genetic mapping to confirm their role in floral transition. Consequently, 36 genes with association to flowering time, seed yield, or both were identified. We found novel indications for neofunctionalization in homologs of known flowering time regulators like VIN3 and FUL. Our study proved the potential of RNA-seq along with association analysis and genetic mapping to identify candidate genes for floral transition in rapeseed. The candidate genes identified in this study could be subjected to genetic modification or targeted mutagenesis and genotype building to breed rapeseed adapted to certain environments.
引用
收藏
页码:1935 / 1947
页数:13
相关论文
共 50 条
  • [31] Genome-Wide Association Study Reveals the Genetic Architecture Underlying Salt Tolerance-Related Traits in Rapeseed (Brassica napus L.)
    Wan, Heping
    Chen, Lunlin
    Guo, Jianbin
    Li, Qun
    Wen, Jing
    Yi, Bin
    Ma, Chaozhi
    Tu, Jinxing
    Fu, Tingdong
    Shen, Jinxiong
    FRONTIERS IN PLANT SCIENCE, 2017, 8
  • [32] Integrated methylome and transcriptome analysis unravel the cold tolerance mechanism in winter rapeseed(Brassica napus L.)
    Guoqiang Zheng
    Xiaoyun Dong
    Jiaping Wei
    Zigang Liu
    Ali Aslam
    JunMei Cui
    Hui Li
    Ying Wang
    Haiyan Tian
    Xiaodong Cao
    BMC Plant Biology, 22
  • [33] Integrated methylome and transcriptome analysis unravel the cold tolerance mechanism in winter rapeseed(Brassica napus L.)
    Zheng, Guoqiang
    Dong, Xiaoyun
    Wei, Jiaping
    Liu, Zigang
    Aslam, Ali
    Cui, JunMei
    Li, Hui
    Wang, Ying
    Tian, Haiyan
    Cao, Xiaodong
    BMC PLANT BIOLOGY, 2022, 22 (01)
  • [34] Genetic analysis for oil and protein contents of rapeseed (Brassica napus L.) at different developmental times
    M. T. Variath
    J. G. Wu
    Y. X. Li
    G. L. Chen
    C. H. Shi
    Euphytica, 2009, 166 : 145 - 153
  • [35] Analysis of Genetic Effects for Heterosis of Erucic Acid and Glucosinolate Contents in Rapeseed (Brassica napus L.)
    ZHANG Haizhen SHI Chunhai and WU Jianguo Department of Agronomy College of Agriculture and Biotechnology Zhejiang University Hangzhou PRChina Key Laboratory of Genetic and Breeding for Landscape Plant Hangzhou Botanical Garden Hangzhou PRChina
    AgriculturalSciencesinChina, 2011, 10 (10) : 1525 - 1531
  • [36] Analysis of Genetic Effects for Heterosis of Erucic Acid and Glucosinolate Contents in Rapeseed (Brassica napus L.)
    Zhang Hai-zhen
    Shi Chun-hai
    Wu Jian-guo
    AGRICULTURAL SCIENCES IN CHINA, 2011, 10 (10): : 1525 - 1531
  • [37] Genetic analysis of loci associated with partial resistance to Sclerotinia sclerotiorum in rapeseed (Brassica napus L.)
    Jianwei Zhao
    Jinling Meng
    Theoretical and Applied Genetics, 2003, 106 : 759 - 764
  • [38] Genetic analysis for oil and protein contents of rapeseed (Brassica napus L.) at different developmental times
    Variath, M. T.
    Wu, J. G.
    Li, Y. X.
    Chen, G. L.
    Shi, C. H.
    EUPHYTICA, 2009, 166 (01) : 145 - 153
  • [39] Genetic and functional analysis of tocopherol biosynthesis pathway genes from rapeseed (Brassica napus L.)
    Fritsche, Steffi
    Wang, Xingxing
    Nichelmann, Lars
    Suppanz, Ida
    Hadenfeldt, Silke
    Endrigkeit, Jessica
    Meng, Jinling
    Jung, Christian
    PLANT BREEDING, 2014, 133 (04) : 470 - 479
  • [40] Genetic analysis of biochemical traits in F3 populations of rapeseed (Brassica napus L.)
    Ahmad, Nazir
    Raziuddin
    Ahad, Fazli
    Iqbal, Touheed
    Khan, Nabeel
    Nauman, Muhammad
    Hameed, Fazli
    ASIAN JOURNAL OF AGRICULTURE AND BIOLOGY, 2020, 8 (04): : 491 - 500