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The susceptibility of different species of sciarid flies to entomopathogenic nematodes

Published online by Cambridge University Press:  05 June 2009

D.H. Gouge
Affiliation:
Department of Agriculture, University of Reading, Earley Gate, PO Box 236, Reading, RG6 2AT, UK
N.G.M. Hague
Affiliation:
Department of Agriculture, University of Reading, Earley Gate, PO Box 236, Reading, RG6 2AT, UK

Abstract

Steinernema feltiae is the most effective nematode for controlling sciarid species but S. carpocapsae does exert some control. S. feltiae is less effective at 30°C than at 22°C. S. anomali, S. riobravis and two Heterorhabditis spp. gave better control at the higher temperature. All six sciarid species tested were susceptible to S. feltiae but there was some variation in the level of infection. UK isolates of S. feltiae were more effective against UK sciarids than the nematode isolates from other European countries which were tested. Adult sciarids are infected by S. feltiae and can disperse nematodes to nematode-free compost.

Type
Research Papers
Copyright
Copyright © Cambridge University Press 1995

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References

Binns, E.S. (1973) Fungus gnats (Diptera: Mycetophilidae, Sciaridae) and the role of mycophagy in soil: a review. Revue d'Ecologie et de Biologue du Sol 18, 7790.Google Scholar
Binns, E.S. (1982) Phoresy as migration – some functional aspects of phoresy in mites. Biological Reviews 57,571620.Google Scholar
Bovien, P. (1937) Some types of associations between nematodes and insects. Videnskabelige Meddeleser fra Dansk Naturhistorisk Forening 101, 1114.Google Scholar
Fan, X. & Hominick, W.M. (1991) Efficiency of the Galleria (wax moth) baiting technique for recovering infective stages of entomopathogenic rhabditids (Steinernematidae and Heterorhabditidae) from sand and soil. Revue de Nematologie 14, 381387.Google Scholar
Finney, J.R. & Walker, C. (1977) The DD-136 strain of Neoaplectana sp. as a potential biological control agent for the European elm bark beetle, Scolytus scolytus. Journal of Invertebrate Pathology 29, 79.CrossRefGoogle Scholar
Fletcher, J.T., White, P.F. & Gaze, R.H. (1989) Mushrooms: pest and disease control, 2nd Edition. 174 pp. Andover, UK, Intercept.Google Scholar
Gouge, D.H. (1994) Biological control of sciarid flies (Diptera: Sciaridae) with entomopathogenic nematodes (Nematoda: Rhabditida), including reference to other Diptera. PhD Thesis, University of Reading.Google Scholar
Gouge, D.H. & Hague, N.G.M. (1993) Effects of Steinernema feltiae against sciarids infesting conifers in a propagation house. Annals of Applied Biology (Suppl, TAC) 122, 184185.Google Scholar
Gouge, D.H. & Hague, N.G.M. (1994) Control of sciarids in glass- and propagation houses with Steinernema feltiae. Proceedings of the Brighton Crop Protection Conference, 10731078.Google Scholar
Gouge, D.H. & Hague, N.G.M. (1995a) Glasshouse control of fungus gnats, Bradysia paupera, on fuchsias by Steinernema feltiae. Fundamental and Applied Nematology 18, 7780.Google Scholar
Gouge, D.H. & Hague, N.G.M. (1995b) The development of Steinernema feltiae (Nematoda: Steinernematidae) in the sciarid fly Bradysia paupera (Diptera: Sciaridae). Annals of Applied Biology 126, 395401.Google Scholar
Grewal, P.S. & Richardson, P.N. (1993) Effects of application rates of Steinernema feltiae (Nematoda: Steinernematidae) on biological control of the mushroom fly Lycoriella auripila (Diptera: Sciaridae). Biocontrol Science and Technology 3, 2940.Google Scholar
Grewal, P.S., Selvan, S. & Gaugler, R. (1994) Thermal adaptation of entomopathogenic nematodes: niche breadth for infection, establishment and reproduction. Journal of Thermal Biology 19, 245253.Google Scholar
Molyneux, A.S. (1986) Heterorhabditis spp. and Steinernema spp. (= Neoaplectana spp.): Temperature and aspects of behaviour and infectivity. Experimental Parasitology 62, 169180.Google Scholar
Nickle, W.R. & Cantelo, W.W. (1991) Control of a mushroom-infesting fly, Lycoriella mali, with Steinernema feltiae. Journal of Nematology 23, 145147.Google Scholar
Poinar, G.O. (1965) Nematodes associated with the Pyschodidae and other terrestrial, Nematocerous Diptera. Proceedings XIIth International Congress of Entomology, p. 749.Google Scholar
Poinar, G.O. (1989) Examination of the neoaplectanid species feltiae Filipjev, carpocapsae Weiser and bibionis Bovien (Nematoda: Rhabditida). Revue de Nematologie 12, 375377.Google Scholar
Poinar, G.O. (1990) Taxonomy and biology of Steinernematidae and Heterorhabditidae. in Gaugler, R. & Kaya, H.K. (Eds.) Entomopathogenic nematodes in biological control. Boca Raton, Florida, CRC Press.Google Scholar
Poinar, G.O. (1992) Steinernema feltiae (Steinernematidae: Rhabditida) parasitizing adult fungus gnats (Mycetophilidae: Diptera) in California. Fundamental and Applied Nematology 15, 427430.Google Scholar
Richardson, P.N. (1987) Susceptibility of mushroom pests to the insect-parasitic nematodes Steinernema feltiae and Heterorhabditis heliothidis. Annals of Applied Biology 111, 433438.Google Scholar
Rinker, D.L. & Bloom, J.R. (1982) Phoresy between a mushroom-infesting fly and two free-living nematodes associated with mushroom culture. Journal of Nematology 14, 599601.Google Scholar
Smith, J.A., Leadbeater, A.J., Willey, C. & Collins, S. (1994) Control of sciarid fly (Lycoriella auripila) with the entomopathogenic nematode Steinernema feltiae in commercial mushroom crops. Proceedings of the Brighton Crop Protection Conference, pp. 773778.Google Scholar
Timper, P.Kaya, H.K. & Gaugler, R. (1988) Dispersal of the entomogenous nematode Steinernema feltiae (Rhabditida: Steinernematidae) by infected adult insects. Environmental Entomology 17, 546555.Google Scholar
Wright, P.J. & Jackson, T.A. (1988) Low temperature activity and infectivity of a parasitic nematode against porina and grass grub larvae. Proceedings of the 41st New Zealand Weed and Pest Control Conference, p. 138.Google Scholar