Engineering of cry genes “Cry11 and Cry1h” in cotton (Gossypium hirsutum L.) for protection against insect pest attack
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S. Ercişli | Sara Zahid | L. Pengtao | Arfan Ali | Wànkuí Gǒng | M. Zafar | Arif Malik | Abdul Razzaq | Yuan Youlu | Muhammad Bilawal Junaid
[1] Fuguang Li,et al. Heterologous expression of cry3Bb1 and cry3 genes for enhanced resistance against insect pests in cotton , 2022, Scientific Reports.
[2] M. Poletto,et al. Self-limiting fall armyworm: a new approach in development for sustainable crop protection and resistance management , 2022, BMC Biotechnology.
[3] Yuzhen Shi,et al. Transformation and Overexpression of Primary Cell Wall Synthesis-Related Zinc Finger Gene Gh_A07G1537 to Improve Fiber Length in Cotton , 2021, Frontiers in Plant Science.
[4] Maozhi Ren,et al. Pyramiding of cry toxins and methanol producing genes to increase insect resistance in cotton , 2020, GM crops & food.
[5] A. Rehman,et al. Insect resistance management in Bacillus thuringiensis cotton by MGPS (multiple genes pyramiding and silencing) , 2020, Journal of Cotton Research.
[6] Efraín Pinzón-Reyes,et al. Generation of Cry11 Variants of Bacillus thuringiensis by Heuristic Computational Modeling , 2020, Evolutionary bioinformatics online.
[7] Rishi Kumar,et al. Evidence for population expansion of Cotton pink bollworm Pectinophora gossypiella (Saunders) (Lepidoptera: Gelechiidae) in India , 2020, Scientific Reports.
[8] M. Sarwar,et al. Development and evaluation of double gene transgenic cotton lines expressing Cry toxins for protection against chewing insect pests , 2019, Scientific Reports.
[9] M. Vaslin,et al. Biotechnological solutions for major cotton (Gossypium hirsutum) pathogens and pests , 2019, Biotechnology Research and Innovation.
[10] J. E. Miranda,et al. Stability and tissue-specific Cry10Aa overexpression improves cotton resistance to the cotton boll weevil , 2019, Biotechnology Research and Innovation.
[11] J. Zorzetti,et al. Isolation and characterization of Bacillus thuringiensis strains active against Elasmopalpus lignosellus (Zeller, 1848) (Lepidoptera, Pyralidae) , 2017 .
[12] M. Alves-Ferreira,et al. Transgenic cotton expressing Cry10Aa toxin confers high resistance to the cotton boll weevil , 2017, Plant biotechnology journal.
[13] C. Verma,et al. Biochemical and Molecular Characterization of Cell Wall Degrading Enzyme, Pectin Methylesterase Versus Banana Ripening: An Overview , 2016 .
[14] M. Birkett,et al. Influence of Two Acyclic Homoterpenes (Tetranorterpenes) on the Foraging Behavior of Anthonomus grandis Boh , 2016, Journal of Chemical Ecology.
[15] I. Wilson,et al. Enhancing Integrated Pest Management in GM Cotton Systems Using Host Plant Resistance , 2016, Front. Plant Sci..
[16] C. Pires,et al. Survival and preference of cotton boll weevil adults for alternative food sources. , 2016, Brazilian journal of biology = Revista brasleira de biologia.
[17] L. L. D. de Macedo,et al. Transgenic Cotton Plants Expressing Cry1Ia12 Toxin Confer Resistance to Fall Armyworm (Spodoptera frugiperda) and Cotton Boll Weevil (Anthonomus grandis) , 2016, Front. Plant Sci..
[18] B. Tabashnik. ABCs of Insect Resistance to Bt , 2015, PLoS genetics.
[19] Liye He,et al. Cloning and characterisation of a novel cry1H gene effective against lepidopterous larvae from a Bacillus thuringiensis strain , 2015 .
[20] D. Kriticos,et al. The Potential Distribution of Invading Helicoverpa armigera in North America: Is It Just a Matter of Time? , 2015, PloS one.
[21] J. Torres,et al. Rational Practices to Manage Boll Weevils Colonization and Population Growth on Family Farms in the Semiárido Region of Brazil , 2014, Insects.
[22] Shuangxia Jin,et al. Pyramiding Bt genes for increasing resistance of cotton to two major lepidopteran pests: Spodoptera litura and Heliothis armigera , 2014, Acta Physiologiae Plantarum.
[23] D. R. Vudem,et al. Development of Transgenic Cotton Lines Expressing Allium sativum Agglutinin (ASAL) for Enhanced Resistance against Major Sap-Sucking Pests , 2013, PloS one.
[24] I. Nasir,et al. Variation in expression of phytochrome B gene in cotton (Gossypium hirsutum L.). , 2013 .
[25] J. E. Miranda,et al. Evaluation of the Boll Weevil Anthonomus grandis Boheman (Coleoptera: Curculionidae) Suppression Program in the State of Goiás, Brazil , 2013, Neotropical Entomology.
[26] C. R. Soccol,et al. Improving Cry8Ka toxin activity towards the cotton boll weevil (Anthonomus grandis) , 2011, BMC biotechnology.
[27] I. Eleftherohorinos,et al. Pesticide Exposure, Safety Issues, and Risk Assessment Indicators , 2011, International journal of environmental research and public health.
[28] Ying-Bo Mao,et al. Cotton plants expressing CYP6AE14 double-stranded RNA show enhanced resistance to bollworms , 2010, Transgenic Research.
[29] A. D. Cushman. The Boll Weevil , 2010 .
[30] M. Adang,et al. Enhancement of Bacillus thuringiensis Cry3Aa and Cry3Bb Toxicities to Coleopteran Larvae by a Toxin-Binding Fragment of an Insect Cadherin , 2009, Applied and Environmental Microbiology.