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Research Article

Chemical Composition of Essential Oils from the Leaves of Schinus molle and Cupressus sempervirens and their Insecticidal Activity against Oryzaephilus surinamensis (Coleoptera: Silvanidae)

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Pages 309-322 | Received 16 Dec 2021, Accepted 07 Feb 2023, Published online: 03 May 2023

References

  • Kumar, D. and Kalita, P. (2017). Reducing postharvest losses during storage of grain crops to strengthen food security in developing countries. Foods. 6(8): 1-22.
  • FAO (2021). World Food Situation. [accessed 2021 September 13]. http://www.fao.org/worldfoodsituation/csdb/fr/.
  • Guèye, M.T., Seck, D., Wathelet, J.P. and Lognay, G. (2011). Pest control of cereal and legume stocks in Senegal and West Africa: Bibliographic summary. Biotechnol. Agron. Soc. Envir. 15(1): 183-194.
  • Waongo, A., Yamkoulga, M., Dabire-Binso, C., Ba, M. and Sanon, A. (2013). Post-harvest conservation of cereals in the southern Sudanese zone of Burkina Faso: Farmer perception and stock assessment. Int. J. Biol. Chem. Sci. 7(3): 1157-1167.
  • Righi Assia, F., Righi, K., Boungab, K. and Mokabli, A. (2019). Study of cereals infestation by the cyst nematodes "Heterodera spp." and distribution of the involved species in western Algeria. Cah. Agric. 28(17): 1-10.
  • Ngamo, L. and Hance, T. (2007). Diversity of food pests and alternative control methods in the tropics. Tropicultura. 25(4): 215-220.
  • Chang, Y., Lee, S.H., Na, J.H., Chang, P.S. and Han, J. (2017). Protection of grain products from Sitophilus oryzae (L.) contami-nation by anti-insect pest repellent sachet containing Allyl Mercaptan microcapsule. J. Food. Sci. 82(11): 2634-2642.
  • Trematerra, P., Kavallieratos, N.G. and Athanassiou, C.G. (2016). Laboratory tests on the ability of Oryzaephilus surinamensis adults to locate different types of chocolate varying in quantity of cocoa. Bull. Insecto-logy. 69(1): 21-24.
  • Nika, E.P., Kavallieratos, N.G. and Papanikolaou, N.E. (2020). Developmental and reproductive biology of Oryzaephilus surinamensis (L.) (Coleoptera: Silvanidae) on seven commodities. J. Stored Prod. Res. 87: 1-6.
  • Rajendran, S. and Sriranjini, V. (2008). Plant products as fumigants for stored product insect control. J. Stored Prod. Res. 44(2): 126-135.
  • Ngamo, S.T., Goudoum, A., Djakissam, W. and Madou, C. (2016). Voandzou bruchids Vigna subterranea (L.) and post-harvest protection tools in northern Cameroon. Entomol. Faun.-Faun. Entomol. 69: 83-89.
  • Paw, M., Begum, T., Gogoi, R., Pandey, S.K. and Lal, M. (2020). Chemical composition of Citrus limon L. Burmf peel essential oil from north east India. J. Essent. Oil-Bear. Plants. 23(2): 337-344.
  • Dutta, P., Sarma, N., Saikia, S., Gogoi, R., Begum, T. and Lal, M. (2021). Pharmacological activity of Trachyspermum ammi L. Seeds essential oil grown from Northeast India. J. Essent. Oil-Bear. Plants. 24(6): 1373-1388.
  • Pandey, S.K., Bhandari, S., Sarma, N., Begum, T., Munda, S., Baruah, J., Gogoi, R., Haldar, S. and Lal, M. (2021). Essential oil composition, pharmacological importance and agro technological practices of patchouli (Pogostemon cablin Benth): A review. J. Essent. Oil-Bear. Plants. 24(6): 1212-1226.
  • Munda, S., Pandey, S.K., Dutta, S., Baruah, J. and Lal, M. (2019). Antioxidant activity, antibacterial activity and chemical composition of essential oil of Artemisia vulgaris L. leaves from Northeast India. J. Essent. Oil-Bear. Plants. 22(2): 368-379.
  • Argui, H., Youchret-Zalleza, OB., Suner, SC., Periz, C.D., Türker, G., Ulusoy, S., Ben-Attia, M., Büyükkaya, F., Oral, A., Coskun, Y. and Said, H. (2021). Isolation, chemical composition, physicochemical properties, and antibacterial activity of Cupressus sempervirens L. essential oil. J. Essent. Oil-Bear. Plants, 24(3): 439-452.
  • Asili, J., Tayarani-Najaran, Z., Emami, S.A., Iranshahi, M., Sahebkar, A. and Eghbali, S. (2021). Chemical composition, cytotoxic and antibacterial activity of essential oil from aerial parts of Salvia tebesana Bunge. J. Essent. Oil-Bear. Plants. 24(1): 31-39.
  • Gogoi, R., Loying, R., Sarma, N., Begum, T., Pandey, S.K. and Lal, M. (2020). “Comparative in-vitro biological activities of methyl eugenol rich Cymbopogon khasianus Hack., leaf essential oil with pure methyl eugenol compound”. Curr. Pharm. Biotechnol. 21(10): 927-938.
  • Khelfane-Goucem, K., Lardjane, N. and Medjdoub-Bensaad, F. (2016). Fumigant and repellent activity of Rutaceae and Lamiaceae essential oils against Acanthoscelides obtectus Say. Afr. J. Agric. Res. 11(17): 1499-1503.
  • Boukraa, N., Ladjel, S., Goudjil, M.B., Eddoud, A. and Sanori, K.W.M. (2020). Chemical compositions, fumigant and repellent activities, of essential oils from three indigenous medicinal plants and their mixture, against stored grain pest, Tribolium castaneum (Herbst) (Coleoptera: Tenebrionidae). Asian J. Res. Chem. 13(6): 455-464.
  • Filomeno, C.A., Almeida Barbosa, L.C., Teixeira, R.R., Pinheiro, A.L., Farias, E.D.S., Ferreira, J.S. and Picanço, M.C. (2020). Chemical diversity of essential oils of Myrtaceae species and their insecticidal activity against Rhyzopertha dominica. J. Pre-Proof. 137: 1-25.
  • Kellouche, A. and Soltani, N. (2004). Biological activity of the powders of five plants and the essential oil of one of them on Callosobruchus maculatus (F.). Int. J. Trop. Insect. Sci. 24(2): 184-191.
  • Ait Aider, F., Kellouche, A., Fellag, H. and Debras, J.F. (2016). Evaluation of the bio-insecticidal effects of the main fatty acids of olive oil on Callosobruchus maculatus F. (Coleoptera-Bruchidae) in cowpea (Vigna unguiculata (L.)). J. Plant. Dis. Prot. 123(5): 235-245.
  • Kassimi, A., Watik, L., Mohammed, M. and Hamid, C. (2017). Mortality of watermelon aphids by neem natural oil and a chemical synthetic product. J. Adv. Agric. Sci. Technol. 4(1): 1-6.
  • Aissaoui, F., Hedjal-Chebheb, M., Soltani, A., Haouel-Hamdi, S., Talhi, O., Chérif Ziani, B.E. and Mediouni-Benjemâa, J. (2021). Variations of chemical composition of two Algerian essential oils collected for different seasons and assessment of their insecticidal toxicity against three moth pests. J. Plant Dis. Prot. 128: 1167-1176.
  • Badji, C.A., Dorland, J., Kheloul, L., Richomme, P., Kellouche, A., Azevedo de Souza, R.C., Bezerra, A.L. and Anton, S. (2021). Behavioral and antennal responses of Tribolium confusum to Varronia globosa essential oil and its main constituents perspective for their use as repellent. Molecules. 26(15): 4393.
  • Estrella-Parra, E.A., Nolasco-Ontiveros, E., Alarcon-Enos, J., Cespedes-Acuna, C.L., Garcia-Bores, A.M., Penalosa-Castro, I., Espinosa-Gonzalez, A.M. and Avila-Acevedo, J.G. (2021). Hyptis mociniana (Benth.) Epling aerial parts essential oil: Chemical composition and insecticidal acti-vity against Cydia pomonella and Drosophila melanogaster larvae. J. Essent. Oil-Bear. Plants. 24(4): 786-791.
  • Abdel-Sattar, E., Zaitoun, A.A., Farag, M.A., Gayed, SHE. and Harraz, F.M.H. (2010). Chemical composition, insecticidal and insect repellent activity of Schinus molle L. leaf and fruit essential oils again Trogoderma granarium and Tribolium castaneum. Nat. Prod. Res. 24(3): 226-235.
  • Bonnier, G. (1990). The great flora of France in colors. (Ed.) Belin, pp: 214-221.
  • Belhamel, K., Abderrahim, A. and Ludwig, R. (2008). Chemical composition and antibacterial activity of the essential oil of Schinus molle L. grown in Algeria. Int. J. Essent. Oil Ther. 2: 175-177.
  • Owolabi, M.S., Ogundajo, A.L., Dosoky, N.S. and Setzer, W.N. (2020). Chemical composition and antimicrobial potential of essential oils of leaf and stem bark of Haematostaphis barteri Hook. F. (Anacardi-aceae). J. Essent. Oil-Bear. Plants. 1-11.
  • Volpini-Klein, A.F.N, Lima Júnior, S.E., Cardoso, C.A.L., Cabral, M.R.P., Louro, G.M., Coutinho, E.J., Dione, A.J., Djalma, P.J. and Simionatto, E. (2021). Chemical composition of essential oils from leaves and fruits of Schinus molle obtained by different extraction methods (hydrodistillation, Frac-tional hydrodistillation and steam distillation) and seasonal variations. J. Essent. Oil-Bear. Plants. 24(2): 228-242.
  • Jahani, M., Akaberi, M., Khayyat, M.H. and Abd Emami, S.A. (2019). Chemical composition and antioxidant activity of essential oils from Cupressus sempervirens. var. sempervirens, C. sempervirens. cv. Cereiformis and C. sempervirens var. horizentalis. J. Essent. Oil-Bear. Plants. 22(4): 917-931.
  • Manivannan, R., Senthil Kumar, M., Jawahar, N., Sai Ganesh, E. and Jubie, S. (2005). A comparative antimicrobial study on the essential oil of the leaves of various species of Cupressus. Anc. Sci. Life. 24(3): 131-133.
  • Riou-Nivert, P. (2001). Softwoods. Volume 1: Knowledge and recognition. 2nd (ed.) of Institute for Forestry Development, pp: 215-255.
  • Adams, R.P. (2017). Identification of essential oil components by Gas Chromatography/Mass Spectrometry. Allured publishing, Carol Stream, Illinois.
  • Babushok, V., Linstrom, P. and Zenkevich, I. (2011). Retention indices for frequently reported compounds of plant essential oils. J. Phys. Chem. Ref. Data. 40(4): 43101-43148.
  • Bouhenna, M.M., Bensouici, C., Khattabi, L., Chebrouk, F. and Mameri, N. (2020). Chemical composition, antioxidant, alpha-glucosidase inhibitory, anticholinesterase and photoprotective activities of the aerial parts of Schinus molle L. Curr. Bioact. Compd. 16: 1-17.
  • Abbott, W.S. (1925). A method of computing the effectiveness of an insecticide. J. Econ. Entomol. 18: 265-267.
  • Jilani, G. and Saxena, RC. (1990). Repellent and feeding deterrent effects of turmeric oil, sweetflag oil, neem oil, and a neem-based insecticide against lesser grain borer (Coleoptera: Bostrychidae). J. Econ. Entomol. 83(2): 629-634.
  • Mc Donald, L.L., Guy, R.H. and Speirs, R.D. (1970). Preliminary evaluation of new candidate materials as toxicants, repellents, and attractants against stored-product insects. Washington: Agricultural Research Service.
  • Rouibi, A., Saidi, F. and Boutoumi, H. (2010). Identification by gas chromatography/mass spectrometry (GC/MS) and determination of antimicrobial effects of essential oils from peppertree (Schinus molle L.). Acta Hortic. 853: 219-228.
  • Almadiy, A.A. and Nenaah, G.E. (2022). Bioactivity and safety evaluations of Cupressus sempervirens essential oil, its nano emulsion and main terpenes against Culex quinquefasciatus Say. Environ. Sci. Pollut. Res. 29(9): 13417-13430.
  • Lal, M., Begum, T., Munda, S. and Pandey, S.K. (2021). Identification of high rhizome and essential oil yielding variety (Jor Lab ZB-103) of Zingiber zerumbet (L.) Roscoe ex Sm. J. Essent. Oil-Bear. Plants. 24(5): 1010-1025.
  • Pandey, S.K., Baruah, J., Paw, M., Sarma, N., Begum, T., Saikia, S. and Lal, M. (2022). Molecular diversity and chemical composition among induced mutation lines of Pogostemon cablin (Blanco) Benth. Using RAPD and ISSR Marker. J. Essent. Oil-Bear. Plants. 25(2): 234-249.
  • Chemat, F. and Lucchesi, M.E. (2005). Microwave-assisted extractions of essential oils and aromatic extracts. J. Soc. Ouest-Afr. Chim. 20: 77-99.
  • Ferhat, M., Boukhatem, M., Hazzit, M. and Chemat, F. (2016). Rapide extraction of volatile compounds from Citrus fruits using a microwave dry distillation. J. Fundam. Appl. Sci. 8(3): 753-781.
  • Hamani-Aoudjit, S. (2019). Bioecology and biocontrol of bean weevil Bruchus rufimanus (Coleoptera: Chrysomelidae: Bruchinae) in the region of Bouira. Doctoral dissertation, Mouloud Mammeri University of Tizi-Ouzou (Algeria), p.153. https://www.ummto.dz/dspace/handle/ummto/8899.
  • Kellouche, A., Ait-Aider, F., Labdaoui, K., Moula, D., Ouendi, K., Hamadi, N., Ouramdane, A., Frerot, B. and Mellouk, M. (2010). Biological activity of ten essential oils against cowpea beetle, Callosobruchus maculatus Fabricius (Coleoptera: Bruchidae). Int. J. Integr. Biol. 10(2): 86-89.
  • Bekele, J. and Hassanali, A. (2001). Blend effects in the toxicity of the essential oil constituents of Ocimum kilimandscharicum and Ocimum kenyense (Labiateae) on two post-harvest insect pests. Phytochemistry. 57: 385-391.
  • Khelfane-Goucem, K. (2014). Study of the insecticidal activity of essential oils and powders of some plants against bean bruchid Acanthocelides obtectus Say (Coleoptera, Chrysomelidae, Bruchinae) and behavior of this pest towards the volatile compounds of different varieties of the host plant (Phaseolus vulgaris L.). Doctoral dissertation, Mouloud Mammeri University of Tizi-Ouzou (Algeria), p.144.
  • Papachristos, D.P. and Stamopoulos, D.C. (2002). Toxicity of vapours of three essential oils to the immature stages of Acanthoscelides obtectus (Say) (Coleoptera: Bruchidae). J. Stored. Prod. Res. 38: 365-373.
  • Chauhan, N., Malik, A. and Sharma, S. (2018). Repellency potential of essential oils against house fly, Musca domestica L. Environ. Sci. Pollut. Res. 25(5): 4707-4714.
  • Taleb-Toudert, K., Hedjal-Chebheb, M., Derdah, Y. and Kellouche, A. (2021). Repellent and insecticidal effects of basil essential oil (Ocimum gratissimum) from Kabylie (Algeria) on Rhyzopertha dominica F. (Coleoptera: Bostrychidae): impact of treatment on the physicochemical and rheological qualities of common wheat flour (Triticum aestivum). Afr. Entomol. 29(2): 547-562.
  • Oussalah, M., Caillet, S., Saucier, L. and Lacroix, M. (2007). Inhibitory effects of selected plant essential oils on the growth of four pathogenic bacteria: E. coli O157:H7, Salmonella typhimurium, Staphylococcus aureus and Listeria monocytogenes. Food Control. 18(5): 414-420.
  • Bounoua-Fraoucene, S., Kellouche, A. and Debras, J.F. (2019). Toxicity of four essential oils against two insect pests of stored grains, Rhyzopertha dominica (Coleoptera: Bostrychidae) and Sitophilus oryzae (Coleoptera: Curculionidae). Afr. Entomol. 27(2): 344-359.
  • Kheloul, L., Anton, S., Breard, D. and Kellouche, A. (2021). Fumigant toxicity of some essential oils and eucalyptol on different life stages of Tribolium confusum (Coleoptera: Tenebrionidae). Bot. Lett. 1-12.
  • Lee, S., Peterson, C.J. and Coats, J.R. (2003). Fumigation toxicity of monoterpenoids to several stored product insects. J. Stored. Prod. Res. 39: 77-85.
  • Sarma, N., Begum, T., Pandey, S.K., Gogoi, R., Munda, S. and Lal, M. (2020). Chemical profiling of leaf essential oil of Lantana camara Linn. From North-East India. J. Essent. Oil-Bear. Plants. 23(5): 1035-1041.
  • Kim, S.I., Yoon, J.S., Jung, J.W., Hong, K.B., Ahn, Y.J. and Kwon, H.W. (2010). Toxicity and repellency of origanum essential oil and its components against Tribolium castaneum (Coleoptera: Tenebrionidae) adults. J. Asia. Pac. Entomol. 13(4): 369-373.
  • Eller, F.J., Vander Meer, R.K., Behle, R.W., Flor-Weiler, L.B. and Palmquist, D.E. (2014). Bioactivity of cedarwood oil and cedrol against arthropod pests. Chem. Ecol. 43(3): 762-766.
  • Jaenson, T.G., Katinka, P. and Borg-Karlson, A.K. (2006). Evaluation of extracts and oils of mosquito (Diptera: Culicidae) repellent plants from Sweden and Guinea-Bissau. J. Med. Entomol. 43(1): 113-119.
  • Huang, Y. and Ho, S.H. (1998). Toxicity and antifeedant activities of cinnamaldehyde against grain storage insects, Tribolium castaneum (Herbst) and Sitophilus zeamais. Motsch. J. Stored Prod. Res. 34(1): 11-17.
  • Chaaban, A., Richardi, V.S., Carrer, A.R., Sperotto Brum, J., Cipriano, R.R., Nogueira Martins, C.E., Navarro Silva, M.A., Deschamps, C. and Molento, M.B. (2018). Insecticide activity of Curcuma longa (leaves) essential oil and its major compound α-phellandrene against Lucilia cuprina larvae (Diptera: Calliphoridae): Histological and ultrastructural biomarkers assessment. Pestic. Biochem. Physiol. 21(2018): 1776-1778.
  • Almadiy, A.A. (2021). Insecticidal and acetylcholinesterase inhibitory activities of Achillea biebersteinii essential oil and its nanoemulsion and major monoterpenes against Tribolium castaneum. J. Asia-Pacific Entomol. 24(4): 1170-1178.
  • Tong, F. and Coats, J.R. (2010). Effects of monoterpenoid insecticides on [3H]-TBOB binding in house fly GABA receptor and 36Cl- uptake in American cockroach ventral nerve cord. Pestic. Biochem. Physiol. 98(3): 317-324.

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