Uneingeschränkter Zugang

Evaluation of Different Monitoring Methods for Musca domestica L. 1758 (Diptera: Muscidae) Indoor Population


Zitieren

Agui N. (2001): Flies carrying enterohemorrhagic Escherichia coli (EHEC) O157 in Japan : A nationwide survey. Med. Entomol. Zool., 52: 97-103.10.7601/mez.52.97_1Search in Google Scholar

Axtell R.C. & Arends J.J. (1990): Ecology and management of arthropod pests of poultry. Annu. Rev. Entomol., 35: 101-126.10.1146/annurev.en.35.010190.000533Search in Google Scholar

Barber D.A., Bahnson P.B., Isaacson R., Jones C.J., Weigel R.M. (2002): Distribution of Salmonella in swine production ecosystems. J. Food Prot., 65: 1861-1868.10.4315/0362-028X-65.12.1861Search in Google Scholar

Barnhart C.S. & Chadwick L.E. (1953): A “fly factor” in attractant studies. Science, 80(117): 104-105.10.1126/science.117.3031.104Search in Google Scholar

Birkemoe T. & Sverdrup-Thygeson A. (2011): Stable fly (Stomoxys calcitrans) and house fly (Musca domestica) densities: A comparison of three monitoring methods on pig farms. J. Pest Sci., (2004), 84: 273-280.10.1007/s10340-011-0352-7Search in Google Scholar

Black W.C. & Krafsur E.S. (1985): Use of sticky traps to investigate seasonal trends in the spatial distribution of house flies and stable flies (Diptera: Muscidae). J. Med. Entomol., 22: 550-557.10.1093/jmedent/22.5.550Search in Google Scholar

Campbell J.B., White R.G., Wright J.E., Crookshank R., Clanton D.C. (1977): Effects of stable flies on weight gains and feed efficiency of calves on growing or finishing rations. J. Econ. Entomol., 70: 592-594.10.1093/jee/70.5.592Search in Google Scholar

Catangui M.A., Campbell J.B., Thomas G.D., Boxler D.J. (1997): Calculating economic injury levels for stable flies (Diptera: Muscidae) on feeder heifers. J. Econ. Entomol., 90: 6-10.10.1093/jee/90.1.6Search in Google Scholar

Chapman J.W., Knapp J.J., Goulson D. (1999): Visual responses of Musca domestica to pheromone impregnated targets in poultry units. Med. Vet. Entomol., 13: 132-138.10.1046/j.1365-2915.1999.00147.xSearch in Google Scholar

Chapman P.A., Learmount J., Morris A.W., Mcgreevy P.B. (1993): The current status of insecticide resistance in Musca domestica in England and Wales and the implications for housefly control in intensive animal units. Pest Manag. Sci., 39: 225-235.10.1002/ps.2780390309Search in Google Scholar

Chapman P.A. & Lloyd C.J. (1981): Spread of resistance among houseflies from farms in the United Kingdom. In: Proceedings of British Crop Protection Conference: Pests and Diseases (11th British Insecticide and Fungicide Conference). 16-19 November 1981. Brighton, England.Search in Google Scholar

Chavasse D.C., Shier R.P., Murphy O.A., Huttly S.R.A., Cousens S.N., Akhtar T. (1999): Impact of fly control on childhood diarrhoea in Pakistan: Community-randomised trial. Lancet, 353: 22-25.10.1016/S0140-6736(98)03366-2Search in Google Scholar

Crosskey R. & Lane R. (1993): House-flies, blowflies and their allies (calyptrate Diptera). Med. insects Arachn., 403-428.10.1007/978-94-011-1554-4_11Search in Google Scholar

D’assis Fonseca E. (1968): Handbooks for Identification of British insects: Diptera Cyclorrhapha: Calyptrata, section (b) Muscidae. Royal Entomological Society of London, London, UK.Search in Google Scholar

Dethier V. (1955): Mode of action of sugar-baited fly traps. J. Econ. Entomol., 48: 235-239.10.1093/jee/48.3.235Search in Google Scholar

Diclaro J.W., Cohnstaedt L.W., Pereira R.M., Allan S.A., Koehler P.G. (2012): Behavioral and physiological response of Musca domestica to colored visual targets. J. Med. Entomol., 49: 94-100.10.1603/ME10257Search in Google Scholar

Ekdahl K., Normann B., Andersson Y. (2005): Could flies explain the elusive epidemiology of campylobacteriosis? BMC Infect. Dis., 5: 11.10.1186/1471-2334-5-11Search in Google Scholar

Fattah A.L.N.M.A. (2011): The Effect of Colors on the Attraction and Aggregation of the Houseflies (Musca domestica L.). Coll. Basic Educ. Res. J., 11: 759-764.Search in Google Scholar

Geden C.J. (2006): Visual targets for capture and management of house flies, Musca domestica L. J. Vector Ecol., 31: 152-157.10.3376/1081-1710(2006)31[152:VTFCAM]2.0.CO;2Search in Google Scholar

Gerry A., Klotz J., Greenberg L., Hinkle N. (2004): Flies. Integrated Pest Management in and around the Home. IPM Educations and Publications and, UC Statewide IPM Program. University of California. Davis, USA.Search in Google Scholar

Gerry A.C., Higginbotham G.E., Periera L.N., Lam A., Shelton C.R. (2011): Evaluation of surveillance methods for monitoring house fly abundance and activity on large commercial dairy operations. J. Econ. Entomol., 104: 1093-1102.10.1603/EC10393Search in Google Scholar

Goulson D., Derwent L.C., Hanley M.E., Dunn D.W., Abolins S.R. (2005): Predicting calyptrate fly populations from the weather, and probable consequences of climate change. J. Appl. Ecol., 42: 795-804.10.1111/j.1365-2664.2005.01078.xSearch in Google Scholar

Graczyk T.K., Cranfield M.R., Fayer R., Bixler H. (1999): House flies (Musca domestica) as transport hosts of Cryptosporidium parvum. Am. J. Trop. Med. Hyg., 61: 500-504.10.4269/ajtmh.1999.61.500Search in Google Scholar

Graczyk T.K., Knight R., Gilman R.H., Cranfield M.R. (2001): The role of non-biting flies in the epidemiology of human infectious diseases. Microbes Infect., 3: 231-235.10.1016/S1286-4579(01)01371-5Search in Google Scholar

Greenberg B. (1971): Flies and Disease. Vol I: Ecology, Classification, and Biotic Associations. Princet. Univ. Press. Princeton, NJ.Search in Google Scholar

Greenberg B. (1973): Flies and disease. Vol II. Biology and disease transmission. Princet. Univ. Press. Princeton, NJ.Search in Google Scholar

Greenberg B., Kowalski J.A, Klowden M.J. (1970): Factors affecting the transmission of salmonella by flies: natural resistance to colonization and bacterial interference. Infect. Immun., 2: 800-809.10.1128/iai.2.6.800-809.1970Search in Google Scholar

Haines A., Kovats R.S., Campbell-Lendrum D., Corvalan C., Haines R.S., Kovats D., Campbell-Lendrum C.C. (2006): Climate change and human health: impacts, vulnerability, and mitigation. Lancet, 367: 2101-2109.10.1016/S0140-6736(06)68933-2Search in Google Scholar

Hanley M.E., Cruickshanks K.L., Dunn D., Stewart-Jones A., Goulson D. (2009): Luring houseflies (Musca domestica) to traps: Do cuticular hydrocarbons and visual cues increase catch? Med. Vet. Entomol., 23: 26-33.10.1111/j.1365-2915.2008.00750.xSearch in Google Scholar

Hansens E.J. (1963): Fly populations in dairy barns. J. Econ. Entomol., 56: 842-844.10.1093/jee/56.6.842Search in Google Scholar

Hecht O. (1963): On the visual orientation of house flies in their search of resting sites. Entomol. Exp. Appl., 6: 107-113.10.1111/j.1570-7458.1963.tb00607.xSearch in Google Scholar

Hecht O. (1970): Light and Color Reactions of Musca domestica 1 Under Different Conditions. Bull. ESA, 16: 94-98.10.1093/besa/16.2.94Search in Google Scholar

Hecht O., Muniz R., Nava A. (1968): Contrary responses of Musca domestica concerning their selection of different shades and hues. Entomol. Exp. Appl., 11: 1-14.10.1111/j.1570-7458.1968.tb00069.xSearch in Google Scholar

Hewitt C.G. (2011): The House-Fly: Musca domestica Linn: Its Structure, Habits, Development, Relation to Disease and Control. Cambridge University Press.Search in Google Scholar

Hogsette J. (1993): The sticky card: device for studying the distribution of adult house fly (Diptera: Muscidae) populations in closed poultry houses. J. Econ. Entomol., 86: 450-454.10.1093/jee/86.2.450Search in Google Scholar

Holl M.V. & Gries G. (2018): Studying the “fly factor” phenomenon and its underlying mechanisms in house flies Musca domestica. Insect Sci., 25: 137-147.10.1111/1744-7917.12376Search in Google Scholar

Holt P.S., Geden C.J., Moore R.W., Gast R.K. (2007): Isolation of Salmonella enterica serovar enteritidis from houseflies (Musca domestica) found in rooms containing Salmonella serovar enteritidis-challenged hens. Appl. Environ. Microbiol., 73: 6030-6035.10.1128/AEM.00803-07Search in Google Scholar

Howard J. & Wall R. (1996): Autosterilization of the house fly, Musca domestica (Diptera: Muscidae) in poultry houses in northeast India. Bull. Entomol. Res., 86: 363-367.10.1017/S0007485300034945Search in Google Scholar

Howard J.J. & Wall R. (1998): Effects of contrast on attraction of the housefly, Musca domestica, to visual targets. Med. Vet. Entomol., 12: 322-324.10.1046/j.1365-2915.1998.00114.xSearch in Google Scholar

Howard L.O. (1911): The house fly, disease carrier; an account of its dangerous activities and of the means of destroying it. (Howard L.O. Ed.) Frederick A. Stokes Company, New York, USA.10.5962/bhl.title.33478Search in Google Scholar

Iwasa M., Makino S., Asakura H., Kobori H., Morimoto Y. (1999): Detection of Escherichia coli O157:H7 from Musca domestica (Diptera: Muscidae) at a cattle farm in Japan. J. Med. Entomol., 36: 108-112.10.1093/jmedent/36.1.108Search in Google Scholar

Kaufman P., Rutz D., Pitts C. (2000): Pest Management Recommendations for Sheep, Goats, and Swine. NYS IPM Type Livest. Fact Sheet.Search in Google Scholar

Kaufman P.E., Rutz D.A., Frisch S. (2001): Sticky traps for large scale house fly (Diptera: Muscidae) trapping in New York poultry facilities. J. Agric. Urban Entomol.,18: 43-49.Search in Google Scholar

Keiding J. (1975): Problems of housefly (Musca domestica) control due to multiresistance to insesticides. J. Hyg. Epidemiol. Microbiol. Immunol., 19: 340-355.Search in Google Scholar

Keiding J. (1999): Review of the global status and recent development of insecticide resistance in field populations of the housefly, Musca domestica (Diptera: Muscidae). Bull. Entomol. Res., 89: S9-S67.Search in Google Scholar

Larsen E.B. & Thomsen M. (1940): The Influence of temperature on the development of some species of Diptera. Vidensk. Medd. fra Dansk naturh. Foren, 104: 75.Search in Google Scholar

Levine O.S. & Levine M.M. (1991): Houseflies (Musca domestica) as mechanical vectors of shigellosis. Rev. Infect. Dis., 13: 688-696.10.1093/clinids/13.4.688Search in Google Scholar

Lysyk T.J. & Axtell R.C. (1985): Comparison of baited jug-trap and spot cards for sampling house fly, Musca domestica (Diptera: Muscidae), populations in poultry houses. Environ. Entomol., 14: 815-819.10.1093/ee/14.6.815Search in Google Scholar

Lysyk T.J. & Axtell R.C. (1986): Field evaluation of three methods for monitoring populations of house flies (Musca domestica) (Diptera: Muscidae) and other filth flies in three types of poultry housing systems. J. Econ. Entomol., 79: 144-151.10.1093/jee/79.1.144Search in Google Scholar

Markus M.B. (1980): Flies as natural transport hosts of Sarcocystis and other coccidia. J. Parasitol., 66: 361-362.10.2307/3280842Search in Google Scholar

Meerburg B.G., Vermeer H.M., Kijlstra A. (2007): Controlling risks of pathogen transmission by flies on organic pig farms. Outlook on Agriculture, 36(3): 193-197.10.5367/000000007781891432Search in Google Scholar

Mian L.S., Maag H., Tacal J.V. (2002): Isolation of Salmonella from muscoid flies at commercial animal establishments in San Bernardino County, California. J. Vector Ecol., 27: 82-85.Search in Google Scholar

Mitchell E., Tingle F., Carlson D. (1975): Effect of muscalure on house fly traps of different color and location in poultry houses. J. Georg. Entomol. Soc., 168-174.Search in Google Scholar

Navduch D. & Stutzenberger F. (2001): The housefly (Musca domestica) as a vector for emerging bacterial enteropathogens. Recent Res. Dev. Microbiol., 5: 205-209.Search in Google Scholar

Nicholas J. (1988): Behaviour of the house fly, Musca domestica (L) in relation to insecticide baits. University of Southampton. PhD Thesis.Search in Google Scholar

Olsen A.R. & Hammack T.S. (2000): Isolation of Salmonella spp. from the housefly, Musca domestica L., and the dump fly, Hydrotaea aenescens (Wiedemann) (Diptera: Muscidae), at caged-layer houses. J. Food Prot., 63: 958-960.10.4315/0362-028X-63.7.958Search in Google Scholar

Ostrolenk M. & Welch H. (1942): The common house fly (Musca domestica) as a source of pollution in food establishments. J. Food Sci., 7: 192-200.10.1111/j.1365-2621.1942.tb17248.xSearch in Google Scholar

Otake S., Dee S.A., Moon R.D., Rossow K.D., Trincado C., Farnham M., Pijoan C. (2003a): Survival of porcine reproductive and respiratory syndrome virus in houseflies. Can. J. Vet. Res., 67: 198.Search in Google Scholar

Otake S., Dee S., Rossow K., Moon R., Trincado C., Pijoan C. (2003b): Transmission of porcine reproductive and respiratory syndrome virus by houseflies (Musca domestica). Vet. Rec., 152: 73-76.10.1136/vr.152.3.7312570309Search in Google Scholar

Pospisil J. (1962): On visual orientation of the house fly (Musca domestica) to colours. Acta Soc. Entomol. Cechoslov., 59: 1-8.Search in Google Scholar

Richter I., Krain H., Mangold H.K. (1976): Long-chain (Z)-9-alkenes are `Psychedelics’ to houseflies with regard to visually stimulated sex attraction and aggregation. Experientia, 32: 186-188.10.1007/BF019377561269604Search in Google Scholar

Rutz D.A., Geden C.J., Pitts C.W. (2000): Pest management recommendations for diary cattle. Cornell and Penn State Cooperative Extension Publication.Search in Google Scholar

Rutz D.A. & Waldron J.K. (2016): Integrated Pest Management Guide for Organic Dairies. New York State Integrated Pest Management Program. Cornell University, Cooperative Extension.Search in Google Scholar

Saif L.J. & Wesley R.D. (1999): Transmissible gastroenteritis coronavirus and Porcine respiratory coronavirus. Dis. swine 8th ed: 325-395.Search in Google Scholar

Sasaki T., Kobayashi M., Agui N. (2000): Epidemiological potential of excretion and regurgitation by Musca domestica (Diptera: Muscidae) in the dissemination of Escherichia coli O157: H7 to food. J. Med. Entomol., 37(6): 945-949.10.1603/0022-2585-37.6.94511126555Search in Google Scholar

Shono T., Zhang L., Scott J.G. (2004): Indoxacarb resistance in the house fly, Musca domestica. Pestic. Biochem. Physiol., 80: 106-112.10.1016/j.pestbp.2004.06.004Search in Google Scholar

Siri A., Scorsetti A.C., Dikgolz V.E., Lopez C.C. (2005): Natural infections caused by the fungus Bauveria bassiana as a pathogen of Musca domestica in the neotropic. BioControl, 50(6): 937-940.10.1007/s10526-005-1888-3Search in Google Scholar

Skovgård H. (2004): Sustained releases of the pupal parasitoid Spalangia cameroni (Hymenoptera: Pteromalidae) for control of house flies, Musca domestica and stable flies Stomoxys calcitrans (Diptera: Muscidae) on dairy farms in Denmark. Biol. Control. 30: 288-297.10.1016/j.biocontrol.2004.02.011Search in Google Scholar

Skovgård H. & Nachman G. (2004): Biological control of house flies Musca domestica and stable flies Stomoxys calcitrans (Diptera: Muscidae) by means of inundative releases of Spalangia cameroni (Hymenoptera: Pteromalidae). Bull. Entomol. Res., 94(6): 555-567.10.1079/BER2004322Search in Google Scholar

Skovgård H. & Steenberg T. (2002): Activity of pupal parasitoids of the stable fly Stomoxys calcitrans and prevalence of entomopathogenic fungi in the stable fly and the house fly Musca domestica in Denmark. BioControl, 47: 45-60.10.1023/A:1014434004946Search in Google Scholar

Snashall D. (1996): ABC of work related disorders: occupational infections. BMJ, 313: 551-554.10.1136/bmj.313.7056.55123519098789989Search in Google Scholar

Stafford K.C., Collison C.H., Burg J.G. (1988): House fly (Diptera: Muscidae) monitoring method comparisons and seasonal trends in environmentally controlled high-rise, caged-layer poultry houses. J. Econ. Entomol., 81: 1426-1430.10.1093/jee/81.5.14263198861Search in Google Scholar

Szalanski A.L., Owens C.B., McKay T., Steelman C.D. (2004): Detection of Campylobacter and Escherichia coli O157: H7 from filth flies by polymerase chain reaction. Med. Vet. Entomol., 18: 241-246.10.1111/j.0269-283X.2004.00502.xSearch in Google Scholar

Wallace G.D. (1971): Experimental transmission of Toxoplasma gondii by filth-flies. Am. J. Trop. Med. Hyg., 20: 411-413.10.4269/ajtmh.1971.20.411Search in Google Scholar

Waterhouse D.F. (1948): The effect of colour on the numbers of houseflies resting on painted surfaces. Aust. J. Biol. Sci., 1: 65-75.10.1071/BI9480065Search in Google Scholar

World Health Organization (2005): Outbreak associated with Streptococcus suis in pigs in China. Available at: https://www.who.int/zoonoses/outbreaks/zoonosesoutbreaksuis1/en/Search in Google Scholar

Wiesmann R. (1960): Untersuchungen über die Sinnesfunktionen der Antennen von Musca domestica L. im Zusammenhang mit dem Köderproblem. Mitt. schweiz. ent. Ges., 33: 121-154.Search in Google Scholar

Wiesmann R. (1962): Untersuchungen uber denFly-factor’und den herdentrieb bei der Hausfliege, Musca. domestica L. Mitteilungen-Schweizerische Entomol. Gesellschaft, 35: 69-114.Search in Google Scholar

Winfield M.D. & Groisman E.A. (2003): Role of nonhost environments in the lifestyles of Salmonella and Escherichia coli. Appl. Environ. Microbiol., 69: 3687-3694.10.1128/AEM.69.7.3687-3694.2003Search in Google Scholar

eISSN:
2466-4774
Sprache:
Englisch
Zeitrahmen der Veröffentlichung:
2 Hefte pro Jahr
Fachgebiete der Zeitschrift:
Wirtschaftswissenschaften, Betriebswirtschaft, Branchen, Agrarindustrie, Lebensmittelindustrie, Biologie, Botanik, Zoologie, Medizin, Veterinärmedizin