The Effect of The Insecticide Hulk on Some Genetic Characteristics of The Whitefly and The Cucumber Plant That Parasitizes It

Authors

  • Rania Ghasan Abd Department of Biology, College Education for Woman, Tikrit University, IRAQ.
  • Rafea Zaidan Mikhlif AlSugmiany Department of Biology, College Science Tikrit University, IRAQ.

DOI:

https://doi.org/10.55544/jrasb.3.1.37

Keywords:

Cucumis sativus, Whitefly, Matk gene, gene 28s, pesticide Hulk

Abstract

Background:  Whitefly, Bemisia tabaci is one of the major injurious sucking pests in tropical and subtropical regions. The effect of the insecticide Hulk, which is used to kill the whitefly, was revealed, and its effect on some of its genes and the genes of the cucumber plant that parasitizes it, was revealed.

Materials and Methods: The current study was conducted in Kirkuk Governorate. DNA was extracted from whiteflies treated with Hulk pesticides and not treated with pesticides as a control, and DNA was also extracted from cucumber leaves treated with the Hulk pesticide and not treated with the pesticide as a control in order to compare them. detecting the specific primer of gene 28s in the whitefly Bemisia tabaci and Matk gene in the plant Cucumis sativus. Three treatments of each pesticide at three concentrations (25% a quarter lethal, 50% half lethal, 100% lethal). 

Results:  The research found that 25% of the pesticide Halk killed 20% of the insects, 50% killed 40%, and 100% killed 70% within 24 hours. Pesticide Hulk found that cucumber plant mutations in the Matk gene and gene 28s had the best insecticidal effects against whitefly Bemisa tabaci.

Conclusions: Overall, results suggest that ethanolic DNA extracts pesticide Hulk is the occurrence of mutations in the Matk gene in the plant Cucumis sativus and gene 28s in the whitefly Bemisia tabaci showed the highest insecticidal effects on whitefly Bemisa tabaci.

Downloads

Download data is not yet available.

Metrics

Metrics Loading ...

References

Liu, S., Wang, K. and Volodymyr, V. (2022). A Review of Heat Shock Proteins Research on Bemisia tabaci. Agricultural Sciences, 13, 393-403.

Aguilera Sammaritano, J. A., Lopez Lastra, C. C., Leclerque, A., Vazquez, F., Toro, M. E., D’alessandro, C., Cuthbertson, A. G. and Lechner, B. (2016). Control of Bemisia tabaci by entomopathogenic fungi isolated from arid soils in Argentina. Biocontrol Science and Technology, 26, 1668-1682.

Novaes, N. S., Lourencao, A. L., Bentivenha, J. P., Baldin, E. L. and Melo, A. M. (2020) . Characterization and potential mechanisms of resistance of cucumber genotypes to Bemisia tabaci (Hemiptera: Aleyrodidae). Phytoparasitica, 48, (643-657).

Pym, A., Mina, J. G., Troczka, B. J., Hayward, A., Daum, E., ELIAS, J., Slater, R., Vontas, J., Bass, C. and Zimmer, C. T. (2023) . A single point mutation in the Bemisia tabaci cytochrome-P450 CYP6CM1 causes enhanced resistance to neonicotinoids. Insect Biochemistry and Molecular Biology, 156, (103-934).

Shahid, M., Khan, M. S., Ahmed, B., Syed, A. and Bahkali, A. H. (2021). Physiological disruption, structural deformation and low grain yield induced by neonicotinoid insecticides in chickpea: A long term phytotoxicity investigation. Chemosphere, 262, (128-388).

Zhu, H., Zhang, H., XU, Y., Lassakova, S., KORABEČNÁ, M. and Neuzil, P. (2020). PCR past, present and future. Biotechniques, 69, (317-325) .

Chamoun, C.A and oliveira-costa (2019). Recovery and identification human Y-STR DNA From immatures of chrysomya albiceps simulation of sexual crime investigation involving victim corpes in state decay ,forensic science intrnation, volum 130(110-112) .

Sambrook, J., Fritch, E.F. and Maniatis, J. (1989). Molecular cloning, a laboratory Manual. 2nd edition. Cold spring Harbor laboratory press, New York.

Maniatis, T. Fritsch, E. and Sambrook. J. (2001). In vitro Application of DNA by the Polymerase Chain Reaction, in Molecular Cloning: A Laboratory Manual. 2nd ed., Cold Spring Harbor Laboratory Press, New York, USA, p. 691.

Senn, R. (2000) . Actara soil applicationus C.Novartis Novartis crop protection, Basel, switzer land. 47 pp.

Payton, T. L., Rebek, E. J. and Payton, M. (2020) . Foliar-and Soil-Applied Pesticide Compatibility with Aphidius colemani1 Parasitoids. Southwestern Entomologist, 45, (31-40) .

EL-Ashry, R., Ali, M. A., Elsobki, A. E. and Aioub, A. A. (2021) . Integrated management of Meloidogyne incognita on tomato using combinations of abamectin, Purpureocillium lilacinum, rhizobacteria, and botanicals compared with nematicide. Egyptian Journal of Biological Pest Control, 31, (1-10) .

Bansal, R., Hunter, W. B. and Haviland, D. R. (2023). Baseline Susceptibility and Evidence of Resistance to Acetamiprid in Gill’s Mealybug, Ferrisia gilli Gullan (Hemiptera: Pseudococcidae). Journal of Eco. Entomol., 116, (554-559).

Berrouk, H., Necib, A., Hamaizia, Y., Chabi, C.-B. and Hmaidia, K. (2023). Acute toxicity of an insecticide (Acetamiprid) on Lumbricus terrestris (linnaeus, 1758). Animal Research International, 20, 4726 - 4733..

Campos, M., Phelan, J., Spadar, A., Collins, E., Goncalves, A., Pelloquin, B., Vaselli, N. M., Meiwald, A., Clark, E. and Stica, C. (2022) . High-throughput barcoding method for the genetic surveillance of insecticide resistance and species identification in Anopheles gambiae complex malaria vectors. Scientific Reports, 12, 1-11.

Kim, D. S., D. J. Brooks and H. Riedl (2006). "Lethal and sublethal effects of abamectin, spinosad, methoxyfenozide and acetamiprid on the predaceous plant bug Deraeocoris brevis in the laboratory." Biocontrol 51: (465-484).

Brigante, J., J. O. Costa, E. L. Espíndola and M. A. Daam (2021). "Acute toxicity of the insecticide abamectin and the fungicide difenoconazole (individually and in mixture) to the tropical stingless bee Melipona scutellaris." Ecotoxicology 30(9): 1872-1879

Qiu, D., N. Xu, Q. Zhang, W. Zhou, Y. Wang, Z. Zhang, Y. Yu, T. Lu, L. Sun and N.-Y. Zhou (2022). "Negative effects of abamectin on soil microbial communities in the short term." Frontiers in Microbiology 13: 1053153

Zhang, Z.Y., Li, Z., Huang, Q. and Zeng, Z. J. (2022). The effects of sub lethal doses of imidacloprid and deltamethrin on honeybee foraging time and the brain transcriptome. Journal of Applied Entomology, 146, (1169-1177).

Downloads

Published

2024-03-07

How to Cite

Abd, R. G., & AlSugmiany, R. Z. M. (2024). The Effect of The Insecticide Hulk on Some Genetic Characteristics of The Whitefly and The Cucumber Plant That Parasitizes It. Journal for Research in Applied Sciences and Biotechnology, 3(1), 245–252. https://doi.org/10.55544/jrasb.3.1.37