Backcrosses to Brassica napus of hybrids between B. juncea and B. napus as a source of herbicide-resistant volunteer-like feral populations

被引:30
|
作者
Liu, Y. B. [1 ,2 ]
Wei, W. [1 ,2 ]
Ma, K. P. [2 ]
Darmency, H. [1 ]
机构
[1] INRA, INRA, UMR 1210, F-21065 Dijon, France
[2] Chinese Acad Sci, Inst Bot, Natl Key Lab Vegetat & Environm Change, Beijing 100093, Peoples R China
关键词
Feral crop population; Mutant herbicide-resistant; Introgression; Pollen flow; Seed production; Oilseed rape; TRANSGENIC OILSEED RAPE; GENE FLOW; FITNESS; GLUFOSINATE; TOLERANT;
D O I
10.1016/j.plantsci.2010.07.005
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Introgression between genetically modified (GM) crops and wild relatives is considered to potentially modify the genetic background of the wild species. The emergence of volunteer-like feral populations through backcross of hybrids to the crop is also a concern. The progeny of spontaneous hybrids between mutant herbicide-resistant oilseed rape (Brassica napus) and wild B. juncea was obtained. Parents, F-2 and BC1 to B. napus were planted together in the field so as to study their performance. The chromosome number of BC1 followed a Normal distribution. Mendelian ratio of the herbicide-resistance gene was found. The F-2 produced less seeds than B. napus, and BC1 had intermediate production. Herbicide-resistant BC1 were not different of their susceptible counterparts for plant weight, seed weight and seed number, but most of them exhibited B. napus morphology and larger flowers than the susceptible BC1. They displayed an important genetic variability allowing further adaptation and propagation of the herbicide-resistance gene. Pollen flow to susceptible plants within the mixed stand was observed. As a consequence, the resistant BC1 produced with B. napus pollen could frequently occur and easily establish as a false feral crop population within fields and along roadsides. (C) 2010 Elsevier Ireland Ltd. All rights reserved.
引用
收藏
页码:459 / 465
页数:7
相关论文
共 50 条
  • [1] Resynthesis of Brassica napus through hybridization between B. juncea and B. carinata
    Debamalya Chatterjee
    Shashi Banga
    Mehak Gupta
    Sakshi Bharti
    Phillip Anthony Salisbury
    Surinder Singh Banga
    Theoretical and Applied Genetics, 2016, 129 : 977 - 990
  • [2] Relationship between hybridization frequency of Brassica juncea x B. napus and distance from pollen source (B. napus) to recipient (B. juncea) under field conditions in Japan
    Tsuda, Mai
    Okuzaki, Ayako
    Kaneko, Yukio
    Tabei, Yutaka
    BREEDING SCIENCE, 2012, 62 (03) : 274 - 281
  • [3] Alloplasmic effects of Brassica napus and B. juncea on seed characteristics of B. carinata
    Caitao Chang
    Fumika Kakihara
    Kana Hondo
    Masahiro Kato
    Euphytica, 2009, 170 : 317 - 325
  • [4] Mechanisms of resistance in Brassica carinata, B. napus and B. juncea to Pseudocercosporella capsellae
    Gunasinghe, N.
    You, M. P.
    Clode, P. L.
    Barbetti, M. J.
    PLANT PATHOLOGY, 2016, 65 (06) : 888 - 900
  • [5] Alloplasmic effects of Brassica napus and B. juncea on seed characteristics of B. carinata
    Chang, Caitao
    Kakihara, Fumika
    Hondo, Kana
    Kato, Masahiro
    EUPHYTICA, 2009, 170 (03) : 317 - 325
  • [6] Improvement of Brassica napus via interspecific hybridization between B. napus and B. oleracea
    Qinfei Li
    Qinghong Zhou
    Jiaqin Mei
    Yongjing Zhang
    Jiana Li
    Zaiyun Li
    Xianhong Ge
    Zhiyong Xiong
    Yinjing Huang
    Wei Qian
    Molecular Breeding, 2014, 34 : 1955 - 1963
  • [7] Characterization of interploid hybrids from crosses between Brassica juncea and B. oleracea and the production of yellow-seeded B. napus
    Wen, Jing
    Zhu, Lixia
    Qi, Liping
    Ke, Hongmei
    Yi, Bin
    Shen, Jinxiong
    Tu, Jinxing
    Ma, Chaozhi
    Fu, TingDong
    THEORETICAL AND APPLIED GENETICS, 2012, 125 (01) : 19 - 32
  • [8] Characterization of interploid hybrids from crosses between Brassica juncea and B. oleracea and the production of yellow-seeded B. napus
    Jing Wen
    Lixia Zhu
    Liping Qi
    Hongmei Ke
    Bin Yi
    Jinxiong Shen
    Jinxing Tu
    Chaozhi Ma
    TingDong Fu
    Theoretical and Applied Genetics, 2012, 125 : 19 - 32
  • [9] Cytoplasmic effects of Brassica napus and B. juncea on extreme temperature stresses of B. carinata
    Caitao Chang
    Deling Sun
    Fumika Kakihara
    Kana Hondo
    Euphytica, 2015, 204 : 335 - 342
  • [10] Molecular characterization of imidazolinone-resistant Brassica rapa × B. napus hybrids
    Francisco Torres Carbonell
    Soledad Ureta
    Claudio Pandolfo
    Alejandro Presotto
    Environmental Monitoring and Assessment, 2020, 192