78
Views
3
CrossRef citations to date
0
Altmetric
Research Articles

Deformation of appendages, antennal segments and sensilla of aphid (Aphis craccivora Koch) treated with Tagetes minuta oil: a scanning electron microscopy study

, , &
Pages 48-54 | Received 18 Feb 2020, Accepted 22 Sep 2020, Published online: 13 Oct 2020

References

  • Adebisi, O., et al., 2019. Volatile, non-volatile composition and insecticidal activity of Eupatorium adenophorum Spreng against diamondback moth, Plutella xylostella (L.), and aphid. Toxin reviews, 38 (2), 143–150.
  • Bakr, R.F.A., et al., 2010. Insecticidal activity of four volatile oils on two museum insect pests. Egyptian academy journal of biological sciences, 2 (2), 57‒66.
  • Chakrabarti, P., et al., 2015. Field populations of native Indian honey bees from pesticide intensive agricultural landscape show signs of impaired olfaction. Scientific reports, 5, 12504.
  • Chakrabarti, P., Sarkar, S., and Basu, P., 2019. Pesticide induced visual abnormalities in Asian honey bees (Apis cerana L.) in intensive agricultural landscapes. Chemosphere, 230, 51–55.
  • Dey, S., Sinha, B., and Kalita, J., 2005. Effect of Eupatorium adenophorum spreng leaf extracts on the mustard aphid, Lipaphis erysimi Kalt: a scanning electron microscope study. Microscopy research and technique, 66 (1), 31–36.
  • Dolma, S.K., et al., 2018. Insecticidal activities of tea saponin against diamondback moth, Plutella xylostella and aphid. Toxin reviews, 37 (1), 52–55.
  • El-Ghareeb, M., et al., 2002. Possible mechanisms of insecticide resistance in cowpea aphid, Aphis craccivora (Koch). The role of general esterase and oxidase enzymes in insecticide resistance of Cowpea. In: The 2nd conference of agriculture science, Vol. 1, 499–510, Assiut, Nepal.
  • Fernandes, F.D.F., Linardi, P.M., and Garcia, H.C., 2002. Morphology of the antenna of Dermatobia hominis (Diptera: Cuterebridae) based on scanning electron microscopy. Journal of medical entomology, 39 (1), 36–43.
  • Haddi, K., et al., 2020. Rethinking biorational insecticides for pest management: unintended effects and consequences. Pest management science, 76 (7), 2286–2293.
  • Han, Z., and Li, F., 2004. Mutations in acetylcholinesterase associated with insecticide resistance in the cotton aphid, Aphis gossypii Glover. Insect biochemistry and molecular biology, 34 (4), 397–405.
  • Holland, J.M., Winder, L., and Perry, J.N., 2000. The impact of dimethoate on the spatial distribution of beneficial arthropods in winter wheat. Annals of applied biology, 136 (2), 93–105.
  • Isman, M.B., 2017. Bridging the gap: moving botanical insecticides from the laboratory to the farm. Industrial crops and products, 110, 10–14.
  • Isman, M.B., 2020. Commercial development of plant essential oils and their constituents as active ingredients in bioinsecticides. Phytochemistry reviews, 19 (2), 235–241.
  • Kandil, M.A., et al., 2017. Mechanism of resistance to pirimicarb in the cowpea aphid. Crop protection, 94, 173–177.
  • Kanturski, M., et al., 2017. Perianal structures in myrmecophilous subterranean aphids (Insecta: Hemiptera: Aphididae) – Comparative morphology of trophobiotic organ with its first description in Lachninae. Arthropod structure & development, 46 (4), 496–507.
  • Kanturski, M., Karcz, J., and Wieczorek, K., 2015. Morphology of the European species of the aphid genus Eulachnus (Hemiptera: Aphididae: Lachninae) – A SEM comparative and integrative study. Micron, 76, 23–36.
  • Ke, L.S., Moore, D., and Waage, J.K., 1991. Selection for fenitrothion resistance in Apanteles plutellae Kurdj (Hymenoptera: Braconidae). Journal of applied entomology, 112 (1-5), 107–110.
  • Koundal, R., et al., 2018. Chemical composition and insecticidal properties of essential oils against diamondback moth (Plutella xylostella L.). Toxin reviews, DOI:https://doi.org/10.1080/15569543.2018.1536668.
  • Laamari, M., Khelfa, L., and Coeur, d. A., 2008. Resistance source to cowpea aphid (Aphis craccivora Koch) in broad bean (Vicia faba L.) Algerian landrace collection. African journal of biotechnology, 7 (14), 2486–2490.
  • Latinović, N., Karamaouna, F., and Kavallieratos, N.G., 2017. First record of Aphis craccivora Koch (Hemiptera: Aphididae) on aronia crop in Montenegro. Hellenic plant protection journal, 10 (2), 67–69.
  • Lima, W.P., et al., 2009. [Establishment of the feeding methodology of Aedes aegypti (Diptera-Culicidae) in Swiss mice and evaluation of the toxicity and residual effect of essential oil from Tagetes minuta L (Asteraceae), in populations of Aedes aegypti]. Revista da sociedade Brasileira de medicina tropical, 42 (6), 638–641.
  • Neville, C. A., 1975. Biology of arthropod cuticle. New York: Springer -Verlag, 460
  • Onagbola, E.O., et al., 2008. Morphological characterization of the antennal sensilla of the Asian citrus psyllid, Diaphorina citri Kuwayama (Hemiptera: Psyllidae), with reference to their probable functions. Micron, 39 (8), 1184–1191.
  • Park, B.S., et al., 2002. Insecticidal and acaricidal activity of piperonaline and piperoctadecalidine derived from dried fruits of Piper longum L. Crop protection, 21 (3), 249–251.
  • Perich, M.J., et al., 1995. Isolation of the insecticidal components of Tagetes minuta (Compositae) against mosquito larvae and adults. Journal of American mosquito control association, 11 (3), 307–310.
  • Rattan, R., et al., 2015. Triterpenoid saponins from Clematis graveolens Lindl. and evaluation of their insecticidal activity. Natural product communicatios, 10 (9), 1525–1528.
  • Reddy, S.G.E., et al., 2016. Chemical composition and insecticidal activities of essential oils against diamondback moth, Plutella xylostella (L.) (Lepidoptera: Yponomeutidae)). Natural product research, 30 (16), 1834–1838.
  • Walia, S., et al., 2019. Influence of harvesting time on essential oil content, chemical composition and pesticidal activity of Artemisia maritima growing wild in the cold desert region of western Himalayas. Journal of essential oil bearing plants, 22 (2), 396–407.
  • Wei, C., et al., 2015. Scanning electron microscopy observations on the antennal sensilla of two stored grain pests Trogoderma granarium and Trogoderma variabile (Coleoptera: Dermestidae). Florida entomologist, 98 (1), 140–148.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.