Bagla P (2010) Hardy cotton-munching pests are latest blow to GM crops. Science 327:1439
PubMed
Article
CAS
Google Scholar
Bates SL, Zhao JZ, Roush RT, Shelton AM (2005) Insect resistance management in GM crops: past, present and future. Nat Biotechnol 23:57–62
PubMed
Article
CAS
Google Scholar
Cao J, Zhao JZ, Tang D, Shelton M, Earle D (2002) Broccoli plants with pyramided cry1Ac and cry1C Bt genes control diamondback moths resistant to Cry1A and Cry1C proteins. Theor Appl Genet 105:258–264
PubMed
Article
CAS
Google Scholar
Cao J, Shelton AM, Earle ED (2008) Sequential transformation to pyramid two Bt genes in vegetable Indian mustard (Brassica juncea L.) and its potential for control of diamondback moth larvae. Plant Cell Rep 27:479–487
PubMed
Article
CAS
Google Scholar
Cong (2010) Studying on the interaction between Spodoptera litura and transgenic cotton (Cry1Ac). Master D Dissertation, Huazhong Agricultural University
Gahan LJ, Ma YT, MacGregor Coble ML, Gould F, Moar WJ, Heckel DG (2005) Genetic basis of resistance to Cry1Ac and Cry2Aa in Heliothis virescens (Lepidoptera: Noctuidae). Journal Econ Entomol 98:1357–1368
Article
CAS
Google Scholar
Guo SD (1995) Engineering of insect-resistant plant with Bacillus thuringiensis crystal protein genes. Sci Agric Sinica 28(5):8–13
CAS
Google Scholar
Guo XP, Huang C, Jin SX, Liang SG, Nie YC, Zhang XL (2007) Agrobacterium-mediated transformation of Cry1C, Cry2A and Cry9C genes into Gossypium hirsutum and plant regeneration. Biol Plant 51(2):242–248
Article
CAS
Google Scholar
Halpin C (2005) Gene stacking in transgenic plants the challenge for 21st century plant biotechnology. Plant Biotechnol J 3:141–155
PubMed
Article
CAS
Google Scholar
Huang DL, Liu HQ, Jiang SX (2006) Effects of Zhongmiansuo 45 and Zhongmiansuo 41 on experimental population of Spodoptera litura. Acta Phytophylacica Sinica 33:1–5
Article
Google Scholar
Jackson RE, Bradley JR, Van Duyn JW (2003) Field performance of transgenic cottons expressing one or two Bacillus thuringiensis endotoxins against bollworm, Helicoverpa zea (Boddie). J Cotton Sci 7:57–64
Google Scholar
James C (2012) Global status of Commercialized biotech/GM Crops 2012, International Service for the Acquisition of Agri-biotech Applications (ISAAA) Brief Nro. 42. ISAAA, Ithaca
Jin SX, Zhang XL, Liang SG, Nie YC, Guo XP, Huang C (2005) Factors affecting stable transformation and plant regeneration during transforming embryogenic callus of Upland cotton (Gossypium hirsutum L.) via Agrobacterium
tumefaciens. Plant Cell, Tissue and Organ Culture 81(2):229–237
Jin SX, Liu GZ, Zhu HG, Yang XY, Zhang XL (2012) Transformation of Upland Cotton (Gossypium hirsutum L.) with gfp Gene as a Visual Marker. J Integr Agric 11(6):910–919
Article
CAS
Google Scholar
Jin FY, Hu LS, Yuan DJ, Xu J, Gao WH, He LR, Yang XY, Zhang XL (2014) Comparative transcriptome analysis between somatic embryos and zygotic embryos in cotton: evidence for stress response functions in somatic embryo development. Plant Biotechnol J 12(2):161–173
PubMed
Article
CAS
Google Scholar
Knox OGG, Gupta VVSR, Roberts GN, Downes SJ (2008) Improving environmental loading assessments of Cry protein from GM plants based on experimentation in cotton. Open Agric J 2:105–112
Article
CAS
Google Scholar
Kranthi KR, Naidu S, Dhawad CS, Tatwawadi A, Mate K, Patil E, Bharose AA, Behere GT, Wadaskar RM, Kranthi S (2005) Temporal and intra- plant variability of Cry1Ac expression in Bt-cotton and its influence on the survival of the cotton bollworm, Helicoverpa armigera (Hübner) (Noctuidae: Lepidoptera). Curr Sci 89:291–298
CAS
Google Scholar
Li YH, Romeis J, Wang P, Peng YF, Shelton AM (2011) A comprehensive assessment of the effects of Bt cotton on Coleomegilla maculata demonstrates no detrimental effects by Cry1Ac and Cry2Ab. PLoS ONE 6:e22185
PubMed
Article
CAS
PubMed Central
Google Scholar
Liu H, Guo X, Naeem MS, Liu D, Xu L, Zhang W, Tang G, Zhou W (2011) Transgenic Brassica napus L. lines carrying a two gene construct demonstrate enhanced resistance against Plutella xylostella and Sclerotinia sclerotiorum. Plant Cell Tiss Org Cult 106:143–151
Article
Google Scholar
Liu GZ, Li XL, Jin SX, Liu XY, Zhu LF, Nie YC, Zhang XL (2014) Overexpression of rice NAC gene SNAC1 improves drought and salt tolerance by enhancing root development and reducing transpiration rate in transgenic cotton. PLoS ONE 9:e86895
PubMed
Article
PubMed Central
Google Scholar
Matten SR, Head GP, Quemada HD (2008) How governmental regulation can help or hinder the integration of Bt crops within IPM programs. In: Romeis J, Shelton AM, Kennedy GG (eds) Integration of insect resistant genetically modified crops within IPM programs. Springer, New York, pp 27–39
Chapter
Google Scholar
Moudgal RK, Chawda C, Gajendra B, Rajan S, Thompson GD (2011) Field efficacy of Widestrike™ Bt cotton, expressing Cry1Ac and Cry1F proteins, against lepidopteran pests in India. In: Kranthi KR, Venugopalan MV, Balasubramanya RH, Kranthi S, Singh SB, Blaise D (eds) World Cotton Research Conference, pp 184–192
Rochester IJ (2006) Effect of genotype, edaphic, environmental conditions and agronomic practices on Cry1Ac protein expression in transgenic cotton. J Cotton Sci 10:252–262
CAS
Google Scholar
Roush R (1998) Two δ-toxin strategies for management of insecticidal transgenic crops: can pyramiding succeed where pesticide mixtures have not? Philos Trans R Soc Lond B Biol Sci 353:1777–1786
Article
CAS
PubMed Central
Google Scholar
Sivasupramaniam S, Moar WJ, Ruschke LG, Osborn JA, Jiang C, Sebaugh JL, Brown GR, Shappley ZW, Oppenhuizen ME, Mullins JW, Greenplate JT (2008) Toxicity and characterization of cotton expressing Bacillus thuringiensis Cry1Ac and Cry2Ab2 proteins for control of lepidopteran pests. J Econ Entomol 101:546–554
PubMed
Article
CAS
Google Scholar
Tu LL, Zhang XL, Liu D, Jin SX, Cao JL, Zhu LF, Deng FL, Tan JF, Zhang CB (2007) Suitable internal control genes for qRT-PCR normalization in cotton fiber development and somatic embryogenesis. Chin Sci Bull 52:3110–3117
Article
CAS
Google Scholar
Van Rensburg J (2007) First report of field resistance by the stem borer, Busseola fusca (Fuller) to Bt-transgenic maize. S Afr J Plant Soil 24:147–151
Article
Google Scholar
Wan P, Wu K, Huang M, Yu D, Wu J (2008) Population dynamics of Spodoptera litura (Lepidoptera: Noctuidae) on Bt cotton in the Yangtze River Valley of China. Environ Ent 37:1043–1048
Article
Google Scholar
Yang J (2008) Studies on population dynamics and detoxification enzyme of Prodenia litura on different cotton varieties. Master D Dissertation, Yangzhou University
Yang Z, Chen H, Tang W, Hua H, Lin Y (2011) Development and characterization of transgenic rice expressing two Bacillus thuringiensis genes. Pest Manag Sci 67:414–422
PubMed
Article
CAS
Google Scholar
Ye X, Al-Babili S, Kloti A, Zhang J, Lucca P, Beyer P, Potrykus I (2000) Engineering the provitamin A (β-carotene) biosynthetic pathway into (carotenoid-free) rice endosperm. Science 287:303–305
PubMed
Article
CAS
Google Scholar
Yi DX, Cui L, Wang L, Liu YM, Zhuang M, Zhang YY, Zhang J, Lang ZH, Zhang ZX, Fang ZY, Yang LM (2013) Pyramiding of Bt cry1Ia8 and cry1Ba3 genes into cabbage (Brassica oleracea L. var. capitata) confers effective control against diamondback moth. Plant Cell Tissue Organ Cult 115(3):419–428
Article
CAS
Google Scholar
Yu YS, Kang XX, Lu YH, Liang JY, Wang H, Wu JY, Yang YZ (2004) Effects of the transgenic Bt cotton on the increase in population of Podoptera litura Fabricius. Jiangsu J Agr Sci 20:169–172
Google Scholar
Zhao JZ, Cao J, Li Y, Collins HL, Roush RT, Earle ED, Shelton AM (2003) Transgenic plants expressing two Bacillus thuringiensis toxins delay insect resistance evolution. Nat Biotechnol 21:1493–1497
PubMed
Article
CAS
Google Scholar