[1] James C. Global status of commercialized biotech/GM crops: ISAAA brief No. 42 . Ithaca, NY: ISAAA, 2010
[2] 郑均宝,梁海永,高宝嘉,等.转双抗虫基因741毛白杨的选择及抗虫性[J]. 林业科学,2000,36(2):13-19
[3] Génissel A, Leplé J C, Millet N, et al. High tolerance against Chrysomela tremulae of transgenic poplar plants expressing a synthetic cry3Aa gene form Bacillus thuringiensis ssp. tenebrionis[J]. Mol Breed, 2003, 11(2):103-110
[4] Seppänen S-K, Syrjälä L, Weissenberg K, et al. Antifungal activity of stilbenes in in vitro bioassays and in transgenic Populus expressing a gene encoding pinosylvin synthase[J]. Plant Cell Rep, 2004, 22(8):584-593
[5] Confalonieri M, Belenghi B, Balestrazzi A, et al. Transformation of elite white poplar (Populus alba L.) cv. ‘Villafranca’ and evaluation of herbicide resistance[J]. Plant Cell Rep, 2000, 19(10): 978-982
[6] 樊军锋,韩一凡,李 铃,等.84K杨树耐盐基因转化研究[J]. 西北林学院学报, 2002,17(4):33-37
[7] Li J H, Su X H, Zhang Q W, et al. Progress in the breeding of saline-tolerant somatic mutant trees[J]. Word Forestry Research, 1997, 6(4):15-21
[8] Eriksson M E, Israelsson M, Olsson O, et al. Increased gibberellin biosynthesis in transgenic trees promotes growth, biomass production and xylem fiber length[J]. Nat Biotechnol, 2000, 18(7):784-789
[9] Shani Z, Dekel M, Tsabary G, et al. Growth enhancement of transgenic poplar plants by overexpression of Arabidopsis thaliana endo-1, 4-glucanase (cell)[J]. Mol Breed, 2004, 14(3):321-330
[10] Wlofenbarger L L, Phifer P R. The ecological risks and benefits of geneticallly engineered plants[J]. Science, 2000, 290(5499): 2088-2093
[11] 诸葛强,房 丹,李秀芬,等.美洲黑杨杂种优良无性系转抗虫基因(Bt和CpTI)的研究[J]. 分子植物育种,2006,4(6):819-824
[12] Hu W J, Harding S A, Lung J, et al. Repression of lignin biosynthesis promotes cellulose accumulation and growth in transgenic trees[J]. Nature Biotechnol, 1999, 17(8): 808-812
[13] Zhang B Y, Chen M, Zhang X F, et al. Expression of Bt-cry3A in transgenic Populus alba × P. glandulosa and its effects on target and non-target pests and the arthropod community[J]. Transgenic Res, 2011, 20(3):523-532
[14] 郭同斌,钱桂芝,张肃俊,等. 抗虫转基因杨树研究进展及前景[J]. 江苏林业科技,2006,33(4):36-42
[15] 高宝嘉,张炬红,王永芳,等.转基因741杨抗虫性研究[J]. 河北农业大学学报,2004,17(4):159-162
[16] Donegan K K, Palm C J, Fieland V J, et al. Changes in levels, species, and DNA fingerprints of soil microorganisms associated with cotton expressing the Bacillus thuringiensis var. kurstaki endotoxin[J]. Appl Soil Ecol, 1995, 2(2): 111-124
[17] Van Frankenhuyzen K. The challenge of Bacillus thuringiensis[M]//Entwistle P F, Cory S, Bailey M J, et al. Bacillus Thuringiensis, an environmental biopesticide: theory and practice. Chichester: John Wiley, 1993: 1-23
[18] Raybould A, Stacey D, Vlachos G, et al. Non-target organism risk assessment of MIR604 maize expressing mCry3A for control of corn rootworm[J]. J Appl Entomol, 2007, 131(6):391-399