Skip to main content
Log in

Chemical composition and effects of four essential oils on mortality, development and physiology of the West Nile virus vector, Culex pipiens

  • Original Research Article
  • Published:
International Journal of Tropical Insect Science Aims and scope Submit manuscript

Abstract

The search for new natural insecticides to control the West Nile virus vector, Culex pipiens, and other mosquito species has gained importance in the past two decades. Therefore, the current study aimed to evaluate the insecticidal and developmental effects of essential oils from Artemisia judaica, Cupressus macrocarpa, Callistemon viminals and Citrus aurantifolia on Cx. pipiens. The essential oils were extracted by hydrodistillation and their chemical compositions were characterized by gas chromatography/mass spectrometry (GC/MS). The oils were mainly composed of monoterpene hydrocarbons and oxygenated monoterpenes. β–Thujone (49.83%), terpinen-4-ol (20.29%), 1,8-cineole (71.77%) and limonene (40.19%) were the most dominant compounds in A. judaica, Cu. macrocarpa, Ca. viminals and C. aurantifolia oils, respectively. The essential oils exhibited larvicidal activity against Cx. pipiens and their activity improved with increasing the concentration and exposure time. The oils of C. aurantifolia and Cu. macrocarpa were most effective and produced 73.3 and 52.0% mortality at 100 mg/L by the end of larval stage. Meanwhile, the oils induced pupal and adult mortality ranged between 3.33 and 25%. Based on the LC50 values of the total stages mortality, C. aurantifolia oil (LC50 = 13.49 mg/L) was the most active, followed by Cu. macrocarpa (LC50 = 22.93 mg/L) and Ca. viminals (LC50 = 38.69 mg/L). Furthermore, the oils of Cu. macrocarpa and Ca. viminals significantly increased the longevity of larva and pupae, while drastically decreased adult longevity of Cx. pipiens. Additionally, the four essential oils caused pupal and adult malformation and induced abnormalities of stomach and great inhibition in reproduction tracts. This is the first report on developmental and malformative effects of tested essential oils. The results showed that the essential oils demonstrated various bioactivities against Cx. pipiens, suggesting their potential use in insect control programs.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Fig. 1

Similar content being viewed by others

References

  • Abd El-Aziz SE, Omer EA, Sabra AS (2007) Chemical composition of Ocimum americanum essential oil and its biological effects against Agrotis ipsilon (Lepidoptera: Noctuidae). Res J Agric Biol Sci 3:740–747

    Google Scholar 

  • Abdel-Kadder A (2005) Toxicological and Histopathological Effects of some botanical extracts on the house Fly Musca domestica L. PhD Thesis, Fac Sci, El-Minia Uni

  • Akono PN, Dongmo PMJ, Tonga C, Kouotou S, Kekeunou S, Magne GT, Lehman LG, Menut C (2015) Larvicidal activity of essential oils from pericarps of ripe citrus fruits cultivated in Cameroon on pyrethroids sensitive and resistant strains of Anopheles gambiae Giles, 1902. J Entomol Zool Stud 3:334–339

    Google Scholar 

  • Al-Wahaibi LHN, Mahmood A, Khan M, Alkhathlan HZ (2018) Comparative study on the essential oils of Artemisia judaica and A. herba-alba from Saudi Arabia. Arab J Chem. https://doi.org/10.1016/j.arabjc.2018.03.004

  • Amos TG, Wiliams P, Du Guesclin PB, Schwarz M (1974) Compounds related to juvenile hormone: activity of selected terpenoids on Tribolium castaneum and T. confusum. J Econ Entomol 67:474–476

    CAS  Google Scholar 

  • Aruna P, Murugan K, Priya A, Ramesh S (2014) Larvicidal, pupicidal and repellent activities of gaultheria oil (Plantae: Ericaceae) against the filarial vector, Culex quinquefasciatus (Insecta: Diptera: Culicidae). J Entomol Zool Stud 2:290–294

    Google Scholar 

  • Aurelie FDG, Ascension NM, Gabriel TH, Herman AAP, Pauline NM, Lebel TJ (2016) Chemical composition and ovicidal, larvicidal and pupicidal activity of Ocimum basilicum essential oil against Anopheles gambiae. (Diptera: Culicidae). Eur J Med Plants 16:1–13

    Google Scholar 

  • Becker N, Petrić D, Zgomba M, Boase C, Madon M, Dahl C, Kaiser A (2010) Mosquitoes and their control, 2nd edn. Springer, Berlin

    Google Scholar 

  • Benelli G, Bedini S, Flamini G, Cosci F, Cioni PL, Amira S, Benchikh F, Laouer H, Di Giuseppe G, Conti B (2015) Mediterranean essential oils as effective weapons against the West Nile vector Culex pipiens and the Echinostoma intermediate host Physella acuta: what happens around? An acute toxicity survey on non target mayflies. Parasitol Res 114:1011–1021

    Google Scholar 

  • Cetin H, Yanikoglu A, Cilek JE (2011) Larvicidal activity of selected plant hydrodistillate extracts against the house mosquito, Culex pipens, a West Nile virus vector. Parasitol Res 108:943–948

    Google Scholar 

  • Chancey C, Grinev A, Volkova E, Rios M (2015) The global ecology and epidemiology of West Nile virusBioMed Res Int. https://doi.org/10.1155/2015/376230

    Google Scholar 

  • Cheng S-S, Chang H-T, Chang S-T, Tsai K-H, Chen W-J (2003) Bioactivity of selected plant essential oils against the yellow fever mosquito Aedes aegypti larvae. Bioresour Technol 89:99–102

    CAS  Google Scholar 

  • Cheng SS, Chang HT, Lin CY, Chen PS, Huang CG, Chen WJ, Chang ST (2009) Insecticidal activities of leaf and twig essential oils from Clausena excavata against Aedes aegypti and Aedes albopictus larvae. Pest Manag Sci 65:339–343

    CAS  Google Scholar 

  • Costa R, Bisignano C, Filocamo A, Grasso E, Occhiuto F, Spadaro F (2014) Antimicrobial activity and chemical composition of Citrus aurantifolia (Christm.) Swingle essential oil from Italian organic crops. J Essent Oil Res 26:400–408

    CAS  Google Scholar 

  • Dias CN, Moraes DFC (2014) Essential oils and their compounds as Aedes aegypti L. (Diptera: Culicidae) larvicides: review. Parasitol Res 113:565–592

    Google Scholar 

  • Dob T, Chelghoum C (2006) Chemical composition of the essential oil of Artemisia judaica L. from Algeria. Flavour Fragr J 21:343–347

    CAS  Google Scholar 

  • El-Minshawy AM, Abdelgaleil SAM, Gadelhak GG, AL-Eryan MA, Rabab RA (2018) Effects of monoterpenes on mortality, growth, fecundity, and ovarian development of Bactrocera zonata (Saunders) (Diptera: Tephritidae). Environ Sci Poll Res 25:15671–15679

    CAS  Google Scholar 

  • El-Sabrout A (2013) Effects of some materials from plant origin on the cotton leafworm, Spodoptera littoralis. PhD Thesis, Fac Agric, Alex Uni

  • Evergetis E, Michaelakis A, Kioulos E, Koliopoulos G, Haroutounian SA (2009) Chemical composition and larvicidal activity of essential oils from six Apiaceae family taxa against the West Nile virus vector Culex pipiens. Parasitol Res 105:117–124

    CAS  Google Scholar 

  • Finney DJ (1971) Probit analysis, third edn. Cambridge University Press, London, UK

    Google Scholar 

  • Fu C-C, Wan T, Jiang Z-L, Wu H, Feng J-T, Ma Z-Q, Zhang X (2013) Fumigation activity of 41 essential oils against Culex pipiens pallens (Diptera: Culicidae). Acta Entomol Sin 56:779–785

    Google Scholar 

  • George DR, Finn RD, Graham KM, Sparagano OA (2014) Present and future potential of plant-derived products to control arthropods of veterinary and medical significance. Parasit Vectors 7:1–12

    Google Scholar 

  • Giatropoulos A, Papachristos DP, Kimbaris A, Koliopoulos G, Polissiou MG, Emmanouel N, Michaelakis A (2012) Evaluation of bioefficacy of three citrus essential oils against the dengue vector Aedes albopictus (Diptera: Culicidae) in correlation to their components enantiomeric distribution. Parasitol Res 111:2253–2263

    Google Scholar 

  • Giatropoulos A, Pitarokili D, Papaioannou F, Papachristos DP, Koliopoulos G, Emmanouel N, Tzakou O, Michaelakis A (2013) Essential oil composition, adult repellency and larvicidal activity of eight Cupressaceae species from Greece against Aedes albopictus (Diptera: Culicidae). Parasitol Res 112:1113–1123

    Google Scholar 

  • Govindarajan M (2010) Chemical composition and larvicidal activity of leaf essential oil from Clausena anisata (Willd.) Hook. f. Ex Benth (Rutaceae) against three mosquito species. Asian Pac J trop med 874-887

  • Hubálek Z (2008) Mosquito-borne viruses in Europe. Parasitol Res 103(Suppl 1):S29–S43

    Google Scholar 

  • Isman MB, Machial C, Miresmailli S, Bainard L (2007) Essential oil-based pesticides: new insights from old chemistry. In: Ohkawa H, Miyagawa H, Lee P (eds) Pesticide chemistry. Wiley-VCH, Weinheim, pp 201–209

    Google Scholar 

  • Janaćković P, Novaković J, Soković M, Vujisić L, Giweli AA, Stevanović ZD, Petar D, Marin PD (2015) Composition and antimicrobial activity of essential oils of Artemisia judaica, A. Herba-Albaand A. Arborescens from Libya. Arch Biol Sci Belgrade 67:455–466

    Google Scholar 

  • Jiang ZL, Akhtar Y, Bradbury R, Zhang X, Isman MB (2009) Comparative toxicity of essential oils of Litsea pungens and Litsea cubeba and blends of their major constituents against the cabbage looper, Trichoplusia ni. J Agric Food Chem 57:4833–4837

    CAS  Google Scholar 

  • Khalaf AA, Hussein KT, Shoukry KK (2009) Biocidal activity of two botanical volatile oils against the larvae of Synthesiomyia nudiseta (Wulp) (Diptera: Muscidae). Egypt Acad J Biol Sci 2:89–101

    Google Scholar 

  • Khandagle AJ, Tare VS, Raut KD, Morey RA (2011) Bioactivity of essential oils of Zingiber officinalis and Achyranthes aspera against mosquitoes. Parasitol Res 109:339–343

    Google Scholar 

  • Khater H F (2003) Biocontrol of some insects. PhD Thesis, Fac Vet Med, Zagazig Uni

  • Khater HF, Shalaby AA (2008) Potential of biologically active plant oils to control mosquito larvae (Culex Pipiens, Diptera: Culicidae) from an Egyptian locality. Rev Inst Med Trop S Paulo 50:107–112

    Google Scholar 

  • Kimbaris A, Koliopoulos G, Michaelakis A, Konstantopoulou M (2012) Bioactivity of Dianthus caryophyllus, Lepidium sativum, Pimpinella anisum, and Illicium verum essential oils and their major components against the West Nile vector Culex pipiens. Parasitol Res 111:2403–2410

    Google Scholar 

  • Koliopoulos G, Pitarokili D, Kioulos E, Michaelakis A, Tzakou O (2010) Chemical composition and larvicidal evaluation of Mentha, Salvia, and Melissa essential oils against the West Nile virus mosquito Culex pipiens. Parasitol Res 107:327–335

    Google Scholar 

  • Konstantopoulou I, Vassilopoulou L, Mavragani-Tsipidou P, Scouras ZG (1992) Insecticidal effects of essential oils. A study of the effects of essential oils extracted from eleven Greek aromatic plants on Drosophila auraria Experientia 48:616–619

    CAS  Google Scholar 

  • Lemes RS, Alves CCF, Estevam EBB, Santiago MB, Martins CHG, Santos TCLD, Crotti AEM, Miranda MLD (2018) Chemical composition and antibacterial activity of essential oils from Citrus aurantifolia leaves and fruit peel against oral pathogenic bacteria. An Acad Bras Cienc 90:1285–1292

    CAS  Google Scholar 

  • Ma W-B, Feng J-T, Jiang Z-L, Wu H, Ma Z-Q, Zhang X (2014) Fumigant activity of eleven essential oil compounds and their selected binary mixtures against Culex pipiens pallens (Diptera: Culicidae). Parasitol Res 113:3631–3637

    Google Scholar 

  • Malizia RA, Cardell DA, Molli JS, González S, Guerra PE, Grau RJ (2000) Volatile constituents of leaf oils from the Cupressacea family: part I. Cupressus macrocarpa Hartw., C. arizonica Greene and C. torulosa Don species growing in Argentina. J Essent Oil Res 12:59–63

    CAS  Google Scholar 

  • Manimaran A, Cruz MMJJ (2014) Plant oils to combat mosquitoes. In plant based medicines, Ed by Remya Mohanraj, pp 69–91.

  • Mehlhorn H (2011) Parasites and their world records in their fight for survival. In: Mehlhorn H (ed) Progress in parasitology, parasitology research monographs vol. 2, springer, pp 41–68.

  • Mubarak EE, Mohajer S, Ahmed I, Taha RM (2014) Essential oil compositions from leaves of Eucalyptus camaldulensis Dehn. And Callistemon viminalis originated from Malaysia. IPCBEE.70:137-141.

  • Peng Z, Yang J, Wang H, Simons FER (1999) Production and characterization of monoclonal antibodies to two new mosquito Aedes aegypti salivary protein. Insect Biochem Mol Biol 29:909–914

    CAS  Google Scholar 

  • Perry NB, Anderson RE, Brennan NJ, Douglas MH, Heaney AJ, McGrimpsey JA, Smallfield BM (1999) Essential oil from Dalmation sage (Salvia officinalis L.), variations among individuals, plant parts, seasons and sites. J Agric Food Chem 47:2048–2054

    CAS  Google Scholar 

  • Perumalsamy H, Kim N-J, Ahn Y-J (2009) Larvicidal activity of compounds isolated from Asarum heterotropoides against Culex pipiens pallens, Aedes aegypti, and Ochlerotatus togoi (Diptera: Culicidae) J med Entomol 46:1420–1423

  • Pitarokili D, Michaelakis A, Koliopoulos G, Giatropoulos A, Tzakou O (2011) Chemical composition, larvicidal evaluation, and adult repellency of endemic Greek thymus essential oils against the mosquito vector of West Nile virus. Parasitol Res 109:425–430

    Google Scholar 

  • Pohilt AM, Rezende AR, Lopes Baldin EL, Lopes NP, de Andrade Neto VF (2011) Plant extracts, isolated phytochemicals, and plant-derived agents which are lethal to arthropod vectors of human tropical diseases—a review. Planta Med 77:618–630

    Google Scholar 

  • Prajapati V, Tripathi AK, Aggarwal KK, Khanuja SPS (2005) Insecticidal, repellent and oviposition-deterrent activity of selected essential oils against Anopheles stephensi, Aedes aegypti and Culex quinquefasciatus. Bioresour Technol 96:1749–1757

    CAS  Google Scholar 

  • Santos SRL, Silva VB, Barbosa JDF, Santos RLC, deSousa DM, Cavalcanti SCH (2010) Toxic effects on and structure-toxicity relationships of phenylpropanoids, terpenes, and related compounds in Aedes aegypti larvae. Vector Borne and Zoonotic Diseases 10:1049–1054

    Google Scholar 

  • Sharaby A, EL-Dosary M (2016) Possibility using camphene as biorational insecticide against the red palm weevil Rhynchophorus ferrugineus (Coleoptera:Curculionedae). Int J Sci Res 5:222–225

  • Sivagnaname N, Kalyanasundaram M (2004) Laboratory evaluation of methanolic extract of Atlantia monophylla (family: Rutaceae) against immature stages of mosquitoes and non-target organisms. Mem Inst Oswaldo Cruz 99:115–118

    CAS  Google Scholar 

  • Srivastava SK, Ahmad A, Syamsunder KV, Aggarwal KK, Khanuja SP (2003) Essential oil composition of Callistemon viminalis leaves from India. Flavour Fragr J 18:361–363

    CAS  Google Scholar 

  • Stamopoulos DC, Damos D, Karagianidou G (2007) Bioactivity of five monoterpenoid vapours to Tribolium confusum (du Val) (Coleoptera: Tenebrionidae). J Stored Prod Res 43:571–577

    CAS  Google Scholar 

  • Varkey TK, Baby S, Mathew J (2013) Comparative chemical profiles of Citrus aurantifolia essential oils from South India. Asian J Chem 25:7871–7875

    CAS  Google Scholar 

  • Wahba MN, Gaballa HS (2019) Antioxidant activity and biological studies of two medicinal plant extracts on Spodoptera littoralis (Boisd). Egypt Acad J Biol Sci 11:15–46

    Google Scholar 

  • WHO (2006) Pesticides and their application for the control of vectors and pests of public health importance, 6th edn. WHO/CDS/NTD/WHOPES, Geneva (GCDPP/2006.a)

  • Yang P, Ma Y, Zheng S (2005) Adulticidal activity of five essential oils against Culex pipiens quinquefasciatus. J Pestic Sci 30:84–89

    CAS  Google Scholar 

  • Zahran HEH, Abdelgaleil SAM (2011) Insecticidal and developmental inhibitory properties of monoterpenes on Culex pipiens L. (Diptera: Culicidae). J Asia Pac Entomol 14:46–51

    CAS  Google Scholar 

  • Zahran HED, Abou-Taleb HK, Abdelgaleil SAM (2017) Adulticidal, larvicidal and biochemical properties of essential oils against Culex pipiens L. J Asia Pac Entomol 20:133–139

    Google Scholar 

  • Zoubiri S, Baaliouamer A, Seba N, Chamouni N (2014) Chemical composition and larvicidal activity of Algerian Foeniculum vulgare seed essential oil. Arab J Chem 7:480–485

    CAS  Google Scholar 

Download references

Acknowledgments

This work was partially supported by the Alexandria University Research Fund (ALEX-REP).

Author information

Authors and Affiliations

Authors

Corresponding author

Correspondence to Samir A. M. Abdelgaleil.

Ethics declarations

Conflict of interest

The authors declare that they have no conflict of interest.

Additional information

Publisher’s note

Springer Nature remains neutral with regard to jurisdictional claims in published maps and institutional affiliations.

Rights and permissions

Reprints and permissions

About this article

Check for updates. Verify currency and authenticity via CrossMark

Cite this article

El-Sabrout, A.M., Zoghroban, A.A.M. & Abdelgaleil, S.A.M. Chemical composition and effects of four essential oils on mortality, development and physiology of the West Nile virus vector, Culex pipiens. Int J Trop Insect Sci 40, 789–799 (2020). https://doi.org/10.1007/s42690-020-00133-8

Download citation

  • Received:

  • Accepted:

  • Published:

  • Issue Date:

  • DOI: https://doi.org/10.1007/s42690-020-00133-8

Keywords

Navigation