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RESEARCH ARTICLE

Effect of hypoxia and its repercussions in packing pupae of the parasitoid Diachasmimorpha longicaudata (Hymenoptera: Braconidae) for shipment

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Pages 665-677 | Received 05 May 2015, Accepted 19 Jan 2016, Published online: 16 Mar 2016

References

  • Arrese, E. L., & Soulages, J. L. (2010). Insect fat body: Energy, metabolism, and regulation. Annual Review of Entomology, 55, 207–225. doi:10.1146/annurev-ento-112408-085356
  • Bakri, A., Metha, K., & Lance, D. R. (2005). Sterilizing insects with ionizing radiation. In V. A. Dyck, J. Hendrichs, & A. S. Robinson (Eds.), Sterile insect technique: Principles and practice in area-wide integrated pest management (pp. 233–268). Dordrecht, The Netherlands: Springer.
  • Bubliy, O. A., Kristensen, T. N., Kellermann, V., & Loeschcke, V. (2012). Plastic response to four environmental stresses and cross-resistance in laboratory population of Drosophila melanogaster. Functional Ecology, 26, 245–253. doi:10.1111/j.1365-2435.2011.01928.x
  • Callier, V., Shingleton, A. W., Brent, C. S., Ghosh, S. M., Kim, J., & Harrison, F. (2013). The role of reduced oxygen in the development physiology of growth and metamorphosis initiation in Drosophila melanogaster. The Journal of Experimental Biology, 216, 4334–4340. doi:10.1242/jeb.093120
  • Cancino, J., Cancino, J. L., Martínez, M., & Liedo, P. (2002). Quality control parameters of wild and mass-reared Diachasmimorpha longicaudata (Ashmead), a fruit fly parasitoid. In N. C. Leppla, K. A. Bloem, & R. F. Luck (Eds.), Quality control for mass-reared arthropods. Proceedings of the eighth and ninth workshops of the international organization for biological control working group on quality control of mass reared arthropods (pp. 84–94). Gainesville: University of Florida.
  • Cancino, J., López, P., Villalobos, P., Hipólito, P., Quintero, L., & Mattiacci, L. (2006). Control de calidad en la cría masiva de Diachasmimorpha longicaudata (Hymenoptera: Braconidae) [Quality control in the mass rearing of Diachasmimorpha longicaudata (Hymenoptera: Braconidae)]. México, DF: SAGARPA-SENASICA-DGSV.
  • Cancino, J., & Montoya, P. (2006). Advances and perspectives in the mass rearing of fruit fly parasitoids in México. In R. L. Sugayama, R. A. Zucchi, S. M. Ovruski, & J. Sivinski (Eds.), Fruit flies of economic importance: from basic to applied knowledge (pp. 133–142), Proceedings of the 7th International Symposium on fruit flies of economic importance. Salvador Bahia, Brazil: Press Color.
  • Candy, D. J., & Kilby, B. A. (1975). Insect biochemistry and function. Dordrecht, The Netherlands: Springer.
  • Centanin, L., Gorr, T. A., & Wappner, P. (2010). Tracheal remodeling in response to hypoxia. Journal of Insect Physiology, 56, 447–454. doi:10.1016/j.jinsphys.2009.05.008
  • Contreras, H. L., & Bradley, T. J. (2009). Research article metabolic rate controls respiratory pattern in insects. The Journal of Experimental Biology, 212, 424–428. doi:10.1242/jeb.024091
  • Dehghani, M., Xiao, C., Money, T. G., Shoemaker, K. L., & Robertson, R. M. (2011). Protein expression following heat shock in the nervous of Locusta migratoria. Journal of Insect Physiology, 57, 1480–1488. doi:10.1016/j.jinsphys.2011.07.017
  • Dowell, R. V., Worley, J., & Gomes, P. J. (2005). Sterile insect supply, emergence and release. In V. A. Dyck, J. Hendrichs, & A. S. Robinson (Eds.), Sterile insect technique, principles and practice in area-wide integrated pest management (pp. 297–324). Dordrecht, The Netherlands: Springer.
  • Eben, A. B., Sivinski, J., & Aluja, M. (2000). Host species and host plan effects on preference and performance of Diachasmimorpha longicaudata (Hymenoptera: Braconidae). Enviromental Entomology, 29, 87–94. doi:10.1603/0046-225X-29.1.87
  • FAO/IAEA/USDA. (2003). Manual for product quality control and shipping procedures for sterile mass-reared tephritid fruit flies, Version 5.0.I AEA, Vienna, Austria.
  • Frazier, M. R., Woods, H. A., & Harrison, J. F. (2001). Interactive effects of rearing temperature and oxygen on the development of Drosophila melanogaster. Physiology and Biochemical Zoology, 74, 641–650. doi:10.1086/322172
  • Haddad, G. G., Sun, Y., Wyman, R. J., & Xu, T. (1997). Genetic basis of tolerance to O2 deprivation in Drosophila melanogaster. Proceedings of Natural Academic Sciences, 94, 10809–10812. doi:10.1073/pnas.94.20.10809
  • Harrison, J. F., Fraizer, M. R., Henry, J. R., Kaiser, A., Klock, C. J., & Rascón, B. (2006). Response of terrestrial insects to hypoxia or hiperoxia. Respiratory Physiology and Neurobiology, 154, 4–17. doi:10.1016/j.resp.2006.02.008
  • Harrison, J. F., Kaiser, A., & vandenBrooks, J. M. (2010). Atmospheric oxygen level and the evolution of insect body size. Proceedings of the Royal Society, 277, 1937–1946. doi:10.1098/rspb.2010.0001
  • Hoback, W. W., & Stanley, D. W. (2001). Insect in hypoxia. Journal of Insect Physiology, 47, 533–542. doi:10.1016/S0022-1910(00)00153-0
  • Hou, N., Armstrong, G. A., Chakraborty-Chatterjee, M., Sokolowski, M. B., & Robertson, R. M. (2014). Na+K+-ATPase trafficking induced by heat shock pretreatment correlates with increased resistance to anoxia in locust. Journal of Neurophysiology, 112, 814–823. doi:10.1152/jn.00201
  • Montoya, P., Cancino, J., Zenil, M., Santiago, G., & Gutiérrez, J. M. (2007). The augmentative biological control component in the Mexican national campaign against Anastrepha spp. fruit flies. In M. J. B. Vreysen, A. S. Robinson, & J. Hendrichs (Eds.), Area-wide control of insect pest (pp. 661–670). Dordrecht, The Netherlands: Springer.
  • Messing, R. H., Klungness, L. M., Purcell, M. F., & Wong, T. T. (1993). Quality control parameters of reared opiinae parasitoids used in augmentative biological control of tephritid fruit flies in Hawaii. Biological Control, 3, 140–147. doi: 10.1006/bcon.1993.1021
  • Nation, J. L. (2002). Insect physiology and biochemistry. Boca Raton, FL: CRC Press.
  • Nestel, D., Nemmy-Lavy, E., Islam, A., Wornoayporn, V., & Cáceres, C. (2007). Effects of pre-irradiation conditioning of medfly pupae (Diptera: Tephritidae): Hypoxia and quality of sterile males. Florida Entomologist, 90, 80–87. doi:10.1653/0015-4040
  • Pfening, D. W., Wund, M. A., Snell-Rood, E. C., Cruickshank, T., Schlichting, C. D. & Moczek, A. P. (2010). Phenotypic pesticity's impacts on diversification and speciation. Trends in Ecology and Evolution, 25, 459–467. doi:10.1016/j.tree.2010.05.006
  • Rascón, B., & Harrison, J. F. (2010). Lifespan and oxidative stress show a non-linear response to atmospheric oxygen in Drosophila. The Journal of Experimental Biology, 213, 3441–3448. doi:10.1242/jeb.044867
  • Rull, J., Birke, A., Ortega, R., Montoya, P., & López, L. (2011). Quantity and safety vs. quality and performance: Conflicting interests during mass rearing and transport affect the efficiency of sterile insect technique programs. Entomologia Experimentalis et Applicata, 142, 78–86. doi:10.1111/j.1570-7458.2011.01196.x
  • Schmitz, A., & Harrison, J. F. (2004). Hypoxic tolerance in air-breathing invertebrates. Respiratory Physiology and Neurobiology, 141, 229–242. doi:10.1016/j.resp.2003.12.004
  • Storey, K. B., & Storey, J. M. (2010). Oxygen: Stress and adaptation in cold-hardy insects. In D. L. Denlinger, & R. E. Lee (Eds.), Low temperature biology of insects (pp. 141–165). Cambridge, UK: Cambridge University Press.
  • Telles-Romero, R., Toledo, J., Hernández, E., Quintero-Fong, J. L., & Cruz-López, L. (2011). Effect of temperature on pupa development and sexual maturity of laboratory Anastrepha obliqua adults. Bulletin of Entomological Research, 101, 565–571. doi:10.1017/S0007485311000150
  • Turnock, W. J., Bodnaryk, R. P., & Abramson, D. (1986). Effect of temperature on the rate of pupa-adult development of the noctuid moth, Mamestra configurata Wlk.: Evidence for differential effects on the initiation of development and subsequent metamorphic development. Oecologia, 68, 422–427. doi: 10.1007/BF01036750
  • Visser, B., Le Lann, C., den Blanken, F. J., Harvey, J. A., van Alphen, J. J. M., & Ellers, J. (2010). Loss of lipid synthesis as an evolutionary consequence of a parasitic lifestyle. Proceedings of the National Academy of Sciences of the United States of America, 107, 8677–8682. doi:10.1073/pnas.1001744107
  • Whitman, D. W., & Agrawal, A. A. (2009). What is phenotypic plasticity and why is it important?. In D. W. Whitman, & Ananthakrishnan (Eds.), Phenotypic Plasticity of Insects: Mechanism and Consequences (pp. 1–63). Enfield: Science Publishers.
  • Woods, H. A., & Hill, R. I. (2004). Temperature-dependent oxygen limitation in insect eggs. The Journal of Experimental Biology, 207, 2267–2276. doi:10.1242/jeb.00991

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