Abstract
Cotesia flavipes parasitizes Diatraea saccharalis, a pest that causes major losses to sugarcane production. The mass production of C. flavipes and its subsequent release onto sugarcane is one form of biological control of D. saccharalis. An essential factor for successfully fighting this pest is the development of host diets that can increase the efficiency of C. flavipes production. Palm oil contains saturated fatty acids, unsaturated fatty acids, and polyunsaturated linoleic acid. However, little is known about the effects of palm oil on C. flavipes production in the laboratory. Different concentrations of palm oil were added to the D. saccharalis diet and its nutritional indices were analyzed. Subsequently, the production and sex ratio of C. flavipes were determined. Our results indicated that the addition of higher palm oil concentrations to an artificial diet generated a high relative consumption rate (RCR) in D. saccharalis, and consequently a high relative metabolic rate (RMR), which resulted in a lower production of the parasitoid. In contrast, the lowest palm oil concentration in the artificial diet generated a low RMR and resulted in high-efficiency conversion of ingested food (ECI), enabling D. saccharalis to yield more C. flavipes. This suggests that palm oil influences the quantity of D. saccharalis ingested, which determines the number of C. flavipes that will be generated. In this study, supplementation of a D. saccharalis diet with 0.25% palm oil increased the production of C. flavipes. Therefore, this level of palm oil supplementation can aid in the production of C. flavipes on a laboratory-scale. Further research, including increasing the number of parasitoids, must be performed to mass-produce the augmentative releases of C. flavipes to manage D. saccharalis.
Funder
Coordenação de Aperfeiçoamento de Pessoal de Nível Superior
Conselho Nacional de Desenvolvimento Científico e Tecnológico
Publisher
Universidade Estadual de Maringa
Reference42 articles.
1. Arrese, E. L., & Soulages, J. L. (2010). Insect fat body: energy, metabolism, and regulation. Annual Reviews of Entomology, 55, 207-225. DOI: https://doi.org/10.1146/annurev-ento-112408-085356
2. Beaulieu, A. D., & Palmquist, D. L. (1995). Differential effects of high fat diets on fatty acid composition in milk of Jersey and Holstein cows. International Journal of Dairy Science, 78(6), 1336-1344. DOI: https://doi.org/10.3168/jds.S0022-0302(95)76755-8
3. Beckage, N. E., & Gelman, D. B. (2004). Wasp parasitoid disruption of host development: Implications for new biologically based strategies for insect control. Annual Reviews of Entomology, 49(1), 299-330. DOI: https://doi.org/10.1146/annurev.ento.49.061802.123324
4. Biondi, A., Campolo, O., Desneux, N., Siscaro, G., Palmeri, V., & Zappalà, L. (2015). Life stage-dependent susceptibility of Aphytis melinus DeBach (Hymenoptera: Aphelinidae) to two pesticides commonly used in citrus orchards. Chemosphere, 128, 142-147. DOI: https://doi.org/10.1016/j.chemosphere.2015.01.034
5. Bortoli, S. A., Viel, S. R., Vacari, A. M., De Bortoli, C. P., & Dos Santos, R. F. (2015). Effect of adult feeding on the quality of sugarcane borer larvae endoparasitoid. Revista Caatinga, 28(1), 270-278.