[1] | Pilson D, Prendeville HR (2004) Ecological effects of transgenic crops and the escape of transgenes into wild populations. Annual Review of Ecology, Evolution, and Systematics 35: 149–174.
|
[2] | Ellstrand NC, Prentice HC, Hancock JF (1999) Gene flow and introgression from domesticated plants into their wild relatives. Annual Review of Ecology, Evolution and Systematics 30: 539–563.
|
[3] | Stewart CN Jr, Halfhill MD, Warwick SI (2003) Transgene introgression from genetically modified crops to their wild relatives. Nature Reviews Genetics 4: 806–817.
|
[4] | Darmency H (1994) The impact of hybrids between genetically modified crop plants and their related species: introgression and weediness. Molecular Ecology 3: 37–40.
|
[5] | Schafer MG, Ross AA, Londo JP, Burdick CA, Lee EH, et al. (2011) The establishment of genetically engineered canola populations in the U.S. PLoS ONE. 6. doi:10.1371/journal.pone.0025736.
|
[6] | Warwick SI, Légère A, Simard MJ, James T (2008) Do escaped transgenes persist in nature? The case of an herbicide resistance transgene in a weedy Brassica rapa population. Molecular Ecology 17: 1387–1395.
|
[7] | Eber F, Chèvre AM, Baranger A, Vallèe P, Tanguy X, et al. (1994) Spontaneous hybridization between a male-sterile oilseed rape and two weeds. Theoretical and Applied Genetics 88: 362–368.
|
[8] | Baranger A, Chèvre AM, Eber F, Renard M (1995) Effect of oilseed rape genotype on the spontaneous hybridization rate with a weedy species an assessment of transgene dispersal. Theoretical and Applied Genetics 91: 956–963.
|
[9] | Bing DJ, Downey RK, Rakow FW (1996) Hybridization among Brassica napus, B. rapa and B. juncea and their two weedy relatives B. nigra and Sinapis arvensis under open pollination conditions in the field. Plant Breeding 115: 470–473.
|
[10] | J?rgensen RB, Andersen B (1994) Spontaneous hybridization between oilseed rape (Brassica napus) and weedy B. campestris (Brassicaceae). American Journal of Botany 81: 1620–1626.
|
[11] | Wei W, Darmency H (2008) Gene flow hampered by low seed size of hybrids between oilseed rape and five wild relatives. Seed Science Research 18: 115–123.
|
[12] | Aparicio N, Villegas D, Araus JL, Blanco R, Royo C (2002) Seedling development and biomass as affected by seed size and morphology in durum wheat. Journal of Agricultural Science 139: 143–150.
|
[13] | Westoby M, Falster DS, Moles AT, Vesk PA, Wright IJ (2002) Plant ecological strategies: Some leading dimensions of variation between species. Annual Review of Ecology and Systematics 33: 125–159.
|
[14] | Gardner JC, Vanderlip RL (1989) Effect of seed size on developmental traits andability to tolerate drought in pearl millet. Transactions of the Kansas Academy of Science 92: 49–59.
|
[15] | Verdu M, Traveset A (2005) Early emergence enhances plant fitness: a phylogenetically controlled metaanalysis. Ecology 86: 1385–1394.
|
[16] | Harper JL, Lovell PH, Moore KG (1970) The shapes and sizes of seeds. Annual Review of Ecology and Systematics 1: 327–356.
|
[17] | Frello S, Hansen KR, Jensen J, J?rgensen RB (1995) Inheritance of rapeseed (Brassica napus)- specific RAPD markers and a transgene in the cross B. juncea×(B.juncea×B. napus). Theoretical and Applied Genetics 91: 236–241.
|
[18] | Liu YB, Wei W, Ma KP, Darmency H (2010) Backcrosses to Brassica napus of hybrids between B. juncea and B. napus as a source of herbicide-resistant volunteer-like feral populations. Plant Science 179: 459–465.
|
[19] | Di K (2008) Fitness of Hybrids Formed between Transgenic Oilseed Rape (Brassica napus) and Brown Mustard (B. juncea) in the Field. PhD Dissertation, Institute of Botany, Chinese Academy of Sciences.
|
[20] | R Development Core Team (2008) R: A language and environment for statistical computing. R Foundation for Statistical Computing, Vienna, Austria.
|
[21] | Halfhill MD, Richards HA, Mabon SA, Stewart CN Jr (2001) Expression of GFP and Bt transgenes in Brassica napus and hybridization with Brassica rapa. Theoretical and Applied Genetics 103: 659–667.
|
[22] | Stanton ML (1985) Seed size and emergence time within a stand of wild radish (Raphanus raphanistrum L.): the establishment of a fitness hierarchy. Oecologia 67.
|
[23] | Choe HS, Chu C, Koch G, Gorham J, Mooney HA (1988) Seed weight and seed resources in relation to plant growth rate. Oecologia 76: 158–159.
|
[24] | Harper JL (1977) Population biology of plants. London. : Academic Press.
|
[25] | Major DJ (1977) Influence of seed size on yield and yield components of rape. Agronomy Journal 69: 541–543.
|
[26] | Shanmuganathan V, Benjamin LR (1992) The influence of sowing depth and seed size on seedling emergence time and relative growth rate in spring cabbage (Brassica oleracea var. capitata L.). Annals of Botany 69: 273–276.
|
[27] | Ahmed SU, Zuberi MI (1973) Effects of seed size on yield and some of its components in rape seed, Brassica campestris L. var. Toria. Crop Science 13: 119–120.
|
[28] | Peterson CM, Klepper B, Rickman RW (1989) Seed reserves and seedling development in winter wheat. Agronomy Journal 81: 245–251.
|
[29] | Harbur MM, Owen MDK (2004) Light and growth rate effects on crop and weed responses to nitrogen. Weed Science 52: 578–583.
|
[30] | Ghersa CM, Martinez-Ghersa MA (2000) Ecological correlates of weed seed size and persistence in the soil under different tilling systems implications for weed management. Field Crops Research 67: 141–148.
|
[31] | Di K, Stewart CN, Wei W, Shen BC, Tang ZX, et al. (2009) Fitness and maternal effects in hybrids formed between transgenic oilseed rape (Brassica napus L.) and wild brown mustard [B. juncea (L.) Czern et Coss.] in the field. Pest Management Science 65: 753–760.
|
[32] | Bergelson J, Purrington CB (1996) Surveying patterns in the cost of resistance in plants. The American Naturalist 148: 536–558.
|
[33] | Strauss SY, Rudgers JA, Lau JA, Irwin RE (2002) Direct and ecological costs of resistance to herbivory. Trends in Ecology & Evolution 17: 278–285.
|
[34] | Mason P, Braun L, Warwick SI, Zhu B, Neal S (2003) Transgenic Bt-producing Brassica napus: Plutella xylostella selection pressure and fitness of weedy relatives. Environmental Biosafety Research 2: 263–276.
|
[35] | Snow AA, Pilson D, Rieseberg LH, Paulsen MJ, Pleskac N, et al. (2003) A Bt transgene reduces herbivory and enhances fecundity in wild sunflowers. Ecological Applications 13: 279–286.
|
[36] | Ramachandran S, Buntin GD, All JN, Raymer PL, Stewart CN Jr (2000) Intraspecific competition of an insect-resistant transgenic canola in seed mixtures. Agronomy Journal 92: 368–374.
|
[37] | Vacher C, Weis AE, Hermann D, Kossler T, Young C, et al. (2004) Impact of ecological factors on the initial invasion of Bt transgenes into wild populations of birdseed rape (Brassica rapa). Theoretical and Applied Genetics 109: 806–814.
|