1,110
Views
3
CrossRef citations to date
0
Altmetric
Research Article

Comparative study of the effects of five Beauveria bassiana (Balsamo) Vuillemin (Ascomycota: Hypocreales) strains on cabbage moth Plutella xylostella (L.) (Lepidoptera: Plutellidae)

, , , & | (Reviewing editor)
Article: 1477542 | Received 28 Aug 2017, Accepted 14 May 2018, Published online: 18 Jun 2018

References

  • Butt, T. M. & Goettel, M. S. (2000). Bioassays of Entomogenous Fungi. In A. Navon, and K. R. S. Ascher (Eds.), Bioassays of Entomopathogenic Microbes and Nematodes (pp. 141–195). Wallingford: CAB International. doi: http://dx.doi.org/10.1079/9780851994222.0141
  • Butt, T. M. (2002). Use of entomogenous fungi for the control of insect pests. In F. Kempken (Ed.), The Mycota XI. Agricultural applications (pp. 111–134). Berlin: Springer-Verlag.
  • Cherry, A. (2006). Development for biopesticide registration and risk assessment guideline for Ghana R8430 (ZA 0659), Final Technical Report 1 feb 2005- 31 Dec 2005, National Ressource Institute at the University of Greenwich 15 Jan 2006.
  • De Bon, H., Huat, J., Parrot, L., Sinzogan, A., Martin, T., Malézieux, E., & Vayssières, J.-F. (2014). Pesticide risks from fruit and vegetable pest management by small farmers in sub-Saharan Africa. A review. Agronomy for Sustainable Development, 34(4), 723–736. doi:10.1007/s13593-014-0216-7
  • Godonou, I., James, B., Atcha-Ahowé, C., Vodouhè, S., Kooyman, C., Ahanchédé, A., & Korie, S. (2009). Potential of Beauveria bassiana and Metarhizium anisopliae isolates from Benin to control Plutella xylostella L. (Lepidoptera: Plutellidae). Crop Protection, 28(3), 220–224. doi:10.1016/j.cropro.2008.10.009
  • Kaaya, G. P., & Hassan, S. (2000). Entomogenous fungi as promising biopesticides for tick control. Experimental & Applied Acarology, 24(12), 913–926. doi:10.1023/A:1010722914299
  • Kahane, R., Hodgkin, T., Jaenicke, H., Hoogendoorn, C., Hermann, M., Hughes, J. D. A., … Looney, N. (2013). Agrobiodiversity for food security, health and income. Agronomy for Sustainable Development, 33(4), 671–693. doi:10.1007/s13593-013-0147-8
  • Kpindou, O. D., Djegui, D. A., Glitho, I. A., & Tamò, M. (2012). Reponse des stades larvaires de Helicoverpa armigera (Hübner)(Lepidoptera: Noctuidae) à l’application de champignons entomopathogènes Metarhizium anisopliae et Beauveria bassiana. Biotechnologie, Agronomie, Société et Environnement, 16(3), 283–293.
  • Kumar, S., & Singh, A. (2015). Biopesticides: Present status and the future prospects. Journal of Biofertilizers & Biopesticides, 6(2). doi:10.4172/2471-2728.1000e129
  • Loc, N. T., & Chi, V. T. B. (2007). Biocontrol potential of Metarhizium anisopliae and Beauveria bassiana against diamondback moth, Plutella xylostella. Omonrice, 15, 86–93.
  • Lohr, B., & Kfir, R. (2004). Diamondback moth Plutella xylostella (L.) in Africa. A review with emphasis on biological control. Improving Biocontrol of Plutella Xylostella, 2(87614), 5707.
  • Mehinto, J. T., Atachi, P., Kpindou, O. K. D., Dannon, E. A., & Tamò, M. (2014). Mortality of Maruca vitrata (Lepidoptera: Crambidae) larval stages induced by different doses of the entomopathogenic fungi Metarhizium anisopliae and Beauveria bassiana. International Journal, 2(4), 273–285.
  • Migwi, B. G. (2016). Assessment of farmers’ perceptions of and willingness to pay for Aflasafe KE01, a biological control for aflatoxins in Kenya. University of Nairobi.
  • Roddam, L. F., & Rath, A. C. (1997). Isolation and characterization of Metarhizium anisopliae and Beauveria bassiana from Subantarctic Macquarie Island. Journal of Invertebrate Pathology, 69(3), 285–288. doi:10.1006/jipa.1996.4644
  • Rosell, G., Quero, C., Coll, J., & Guerrero, A. (2008). Biorational insecticides in pest management. Journal of Pesticide Science, 33(2), 103–121. doi:10.1584/jpestics.R08-01
  • Sayer, J., & Cassman, K. G. (2013). Agricultural innovation to protect the environment. National Academy of Sciences.
  • Simon, S., Komlan, F. A., Adjaïto, L., Mensah, A., Coffi, H. K., Ngouajio, M., & Martin, T. (2014). Efficacy of insect nets for cabbage production and pest management depending on the net removal frequency and microclimate. International Journal of Pest Management, 60(3), 208–216. doi:10.1080/09670874.2014.956844
  • Thibaud, M., Serge, S., Laurent, P., Komlan Françoise, A., Faustin, V., Anselme, A., …, Mathieu, N. (2015). Eco-friendly nets to improve vegetable production and quality in sub-Saharan Africa. In Hale, C., Hunter, D., Roberts, W., Ikin, R., McMaugh, S. (Eds.), XXIX International Horticultural Congress on Horticulture: Sustaining Lives, Livelihoods and Landscapes (IHC2014): International Symposia on Innovative Plant Protection in Horticulture, Biosecurity, Quarantine Pests, and Market Access (pp. 221-228). Leuven: ISHS [Belgique]. ISBN 978-94-62610-99-6
  • Vidogbéna, F., Adégbidi, A., Tossou, R., Assogba-Komlan, F., Martin, T., Ngouajio, M., … Zander, K. K. (2015). Consumers’ willingness to pay for cabbage with minimized pesticide residues in Southern Benin. Environments, 2(4), 449–470. doi:10.3390/environments2040449
  • Vidogbéna, F., Adégbidi, A., Tossou, R., Assogba-Komlan, F., Martin, T., Ngouajio, M., … Zander, K. K. (2016). Exploring factors that shape small-scale farmers’ opinions on the adoption of eco-friendly nets for vegetable production. Environment, Development and Sustainability, 18(6), 1749–1770. doi:10.1007/s10668-015-9717-z