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18 - Acaricides for controlling ticks on cattle and the problem of acaricide resistance

Published online by Cambridge University Press:  21 August 2009

J. E. George
Affiliation:
Knipling–Bushland US Livestock Insects Research Laboratory USDA, ARS 2700 Fredericksburg Road Kerrville TX 78028 USA
J. M. Pound
Affiliation:
Knipling–Bushland US Livestock Insects Research Laboratory USDA, ARS 2700 Fredericksburg Road Kerrville TX 78028 USA
R. B. Davey
Affiliation:
Cattle Fever Tick Research Laboratory USDA, ARS Moore Air Base, Bldg. 6419 22675 N. Moorefield Road Edinberg TX 78541 USA
Alan S. Bowman
Affiliation:
University of Aberdeen
Patricia A. Nuttall
Affiliation:
Centre for Ecology and Hydrology, Swindon
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Summary

INTRODUCTION

During the nineteenth century, as the number of cattle in the world was increased to feed the human populations of recently industrialized nations, there was a growing awareness of the relationship between infestations of cattle with ticks and disastrous epizootics of disease in herds of cattle. Problems with tick-borne diseases were related to the introduction of improved breeds of cattle into tick-infested areas because of their greater productivity than well-adapted indigenous breeds. Also, cattle infested with ticks and infected with tick-borne disease agents were moved into areas where these tick species had not previously existed (Shaw, 1969).

A severe outbreak of disease in cattle, almost certainly bovine piroplasmosis, occurred in Lancaster County, Pennsylvania, in 1796. Epidemiological evidence indicated a relationship between the disease problem and a recent shipment of cattle into the state from South Carolina, a southern state:

Experience soon showed that the invariable result following the transportation of southern cattle into the Northern States was the death of all northern cattle along the roads and on the pastures over which the southern cattle had traveled, although the latter animals remained perfectly healthy. In the same way northern cattle taken south almost invariably succumbed to the malady.

(Mohler, 1906.)

The disease was called ‘Texas fever’ or ‘cattle fever’ and by 1885 resulted in the prohibition of movements of southern cattle into the northern states.

Type
Chapter
Information
Ticks
Biology, Disease and Control
, pp. 408 - 423
Publisher: Cambridge University Press
Print publication year: 2008

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References

Aguirre, J., Sobrino, L., Santamaria, M., et al. (1986). Resistencia de garrapatas en Mexico. In Seminario International de Parasitologia Animal, Memorias, eds. Cavazzani, A. H. & Garcia, Z., pp. 282–306. CuernavacaMorelos, Mexico.Google Scholar
Aguirre, D. H., Viñabal, A. E., Salatin, A. O., et al. (2000). Susceptibility to two pyrethroids in Boophilus microplus (Acari: Ixodidae) populations in northwest Argentina: preliminary results. Veterinary Parasitology 88, 329–334.CrossRefGoogle ScholarPubMed
Angus, B. M. (1996). The history of the cattle tick Boophilus microplus in Australia and achievements in its control. International Journal for Parasitology 26, 1341–1355.CrossRefGoogle ScholarPubMed
Baker, J. A. F. & Shaw, R. D. (1965). Toxaphene and lindane resistance in Rhipicephalus appendiculatus, the brown ear tick of equatorial and southern Africa. Journal of the South African Veterinary Medical Association 36, 321–330.Google Scholar
Benavides, E., Rodríguez, J. L. & Romero, A. (2000). Isolation and partial characterization of the Montecitos strain of Boophilus microplus (Canestrini, 1877) multi-resistant to different acaricides. Annals of the New York Academy of Sciences 916, 668–671.CrossRefGoogle Scholar
Bull, M. S., Swindale, S., Overend, D. & Hess, E. A. (1996). Suppression of Boophilus microplus populations with fluazuron: an acarine growth regulator. Australian Veterinary Journal 74, 468–470.CrossRefGoogle ScholarPubMed
Caproni, L. Jr, Umehara, O., Moro, E. & Goncalves, L. C. B. (1998). Field efficacy of doramectin and ivermectin against natural infestations of the cattle tick Boophilus microplus. Brazilian Journal of Veterinary Parasitology 7, 151–155.Google Scholar
Cobbett, N. G. (1947). Preliminary tests in Mexico with DDT, cube hexachlorocyclohexane (benzene hexachloride), and combinations thereof, for the control of the cattle fever tick, Boophilus annulatus. American Journal of Veterinary Research 8, 280–283.Google Scholar
Coetzee, B. B., Stanford, G. D. & Davis, D. A. T. (1987). The resistance spectrum shown by a fenvalerate-resistant strain of blue tick (Boophilus decoloratus) to a range of ixodicides. Onderstepoort Journal of Veterinary Research 54, 79–82.Google ScholarPubMed
Coronado, A. (1995). Current status of the tropical cattle tick, Boophilus microplus in Venezuela. In Resistencia y Control en Garrapatas y Moscas de Importancia Veterinaria, III Seminario Internacional de Parasitologia Animal, eds. Rodriquez, S. & Fragoso, H., Acapulco, Guerrero, Mexico, pp. 22–29.Google Scholar
Davey, R. B. & Ahrens, E. H. (1984). Control of Boophilus ticks on heifers with two pyrethroids applied as sprays. American Journal of Veterinary Research 45, 1008–1010.Google ScholarPubMed
Davey, R. B. & George, J. E. (2002). Efficacy of macrocyclic lactone endectocides against Boophilus microplus (Acari: Ixodidae) infested cattle using different pour-on application treatment regimes. Journal of Medical Entomology 39, 763–769.CrossRefGoogle ScholarPubMed
Davey, R. B., Ahrens, E. H., George, J. E., Hunter, J. E. III & Jeannin, P. (1998). Therapeutic and persistent efficacy of fipronil against Boophilus microplus (Acari: Ixodidae) on cattle. Veterinary Parasitology 74, 261–276.CrossRefGoogle ScholarPubMed
Davey, R. B., Ahrens, E. H., George, J. E., Hunter, J. E. III & Jeannin, P. (1999). Evaluation of a pour-on formulation of fipronil against Boophilus microplus (Acari: Ixodidae) under natural South Texas field conditions. Experimental and Applied Acarology 23, 351–364.CrossRefGoogle Scholar
Davey, R. B., Ahrens, E. H., George, J. E. & Karns, J. S. (1995). Efficacy of freshly mixed coumaphos suspensions adjusted to various pH levels for treatment of cattle infested with Boophilus annulatus (Say) (Acari: Ixodidae). Preventative Veterinary Medicine 23, 1–8.CrossRefGoogle Scholar
Davey, R. B., George, J. E. & Snyder, D. E. (2001). Efficacy of a single whole-body spray treatment of spinosad, against Boophilus microplus (Acari: Ixodidae) on cattle. Veterinary Parasitology 99, 41–52.CrossRefGoogle ScholarPubMed
Fragoso, H., Soberanes, N., Ortiz, M., Santamaria, M. & Ortiz, A. (1995). Epidemiologia de la resistencia a ixodicides piretroides en garrapatas Boophilus microplus en la Republica Mexicana. In Resistencia y Control en Garrapatas y Moscas de Importancia Veterinaria, III Seminario Internacional de Parasitologia Animal, eds. Rodriquez, S. & Fragoso, H., Acapulco, Guerrero, Mexico, pp. 45–57.Google Scholar
Francis, M. (1892). Preventive measures for farm or range use. Bulletin of the Texas Agriculture Experiment Station 24, 253–256.Google Scholar
Furlong, J. (1999). Diagnosis of the susceptibility of the cattle tick, Boophilus microplus, to acaricides in Minas, Gerais State, Brazil. In Control de la Resistencia en Garrapatas y Moscas de Importancia Veterinaria y Enfermedades que Transmiten, IV Seminario Internacional de Parasitologia Animal, eds. Morales, G., Fragosa, H. & Garcia, Z., Puerto Vallarta, Jalisco, Mexico, pp. 41–46.Google Scholar
George, J. E. (1990). Summing-up of strategies for the control of ticks in regions of the world other than Africa. Parassitologia 32, 203–209.Google ScholarPubMed
George, J. E. & Davey, R. B. (2004). Therapeutic and persistent efficacy of a single application of doramectin applied either as a pour-on or injection to cattle infested with Boophilus microplus (Acari: Ixodidae). Journal of Medical Entomology 41, 402–407.CrossRefGoogle Scholar
George, J. E., Davey, R. B., Ahrens, E. H., Pound, J. M. & Drummond, R. O. (1998). Efficacy of amitraz (Taktic® 12.5% EC) as a dip for the control of Boophilus microplus (Canestrini) (Acari: Ixodidae) on cattle. Preventative Veterinary Medicine 37, 55–67.CrossRefGoogle Scholar
Georghiou, G. P. & Taylor, C. E. (1977). Operational influences in the evolution of insecticide resistance. Journal of Economic Entomology 70, 653–658.CrossRefGoogle ScholarPubMed
Gonzales, J. C., Muniz, R. A., Farias, A., Goncalves, L. C. B. & Rew, R. S. (1993). Therapeutic and persistent efficacy of doramectin against Boophilus microplus in cattle. Veterinary Parasitology 49, 107–109.CrossRefGoogle ScholarPubMed
Graham, O. H. & Hourrigan, J. L. (1977). Eradication programs for the arthropod parasites of livestock. Journal of Medical Entomology 13, 629–658.CrossRefGoogle ScholarPubMed
Guerrero, F. D., Li, A. Y. & Hernandez, R. (2002). Molecular diagnosis of pyrethroid resistance in Mexican strains of Boophilus microplus (Acari: Ixodidae). Journal of Medical Entomology 39, 770–776.CrossRefGoogle Scholar
He, H., Chen, A. C., Davey, R. B., Ivie, G. W. & George, J. E. (1999). Identification of a point mutation in the para-type sodium channel gene from a pyrethroid-resistant cattle tick. Biochemical and Biophysical Research Communications 261, 558–561.CrossRefGoogle ScholarPubMed
Hernandez, R., He, H., Chen, A. C., et al. (2000). Identification of a point mutation in an esterase gene in different populations of the southern cattle tick, Boophilus microplus. Insect Biochemistry and Molecular Biology 30, 969–977.CrossRefGoogle Scholar
Holdsworth, P. A., Kemp, D., Green, P., et al. (2006). World Association for the Advancement of Veterinary Parasitology (W.A.A.V.P.) guidelines for evaluating the efficacy of acaricides against ticks (Ixodidae) on ruminants. Veterinary Parasitology 136, 29–43.CrossRefGoogle ScholarPubMed
Jonsson, N. N. (1997). Control of cattle ticks (Boophilus microplus) on Queensland dairy farms. Australian Veterinary Journal 75, 802–807.CrossRefGoogle ScholarPubMed
Jonsson, N. N. & Matschoss, A. L. (1998). Attitudes and practices of Queensland dairy farmers to the control of the cattle tick, Boophilus microplus. Australian Veterinary Journal 76, 746–751.CrossRefGoogle ScholarPubMed
Kemp, D. H., McKenna, R. V., Thullner, R. & Willadsen, P. (1999). Strategies for tick control in a world of acaricide resistance. In Control de la Resistencia en Garrapatas y Moscas de Importancia Veterinaria y Enfermedades que Transmiten, IV Seminario Internacional de Parasitologia Animal, eds. Morales, G., Fragosa, H. & Garcia, Z., Puerto Vallarta, Jalisco, Mexico, pp. 1–10.Google Scholar
Kemp, D. H., Thullner, F., Gale, K. R., Nari, A. & Sabatini, G. A. (1998). Acaricide Resistance in the Cattle-Ticks Boophilus microplus and B. decoloratus: Review of Resistance Data – Standardization of Resistance Tests and Recommendations for Integrated Parasite Control to Delay Resistance, Report to the Animal Health Services AGAH. Rome: Food and Agriculture Organization.
Kunz, S. E. & Kemp, D. H. (1994). Insecticides and acaricides: resistance and environmental impact. Revue scientifique et technique de l'Office International des Epizooties 13, 1249–1286.CrossRefGoogle ScholarPubMed
Lasota, J. A. & Dybas, R. A. (1991). Avermectins, a novel class of compounds: implications for use in arthropod pest control. Annual Review of Entomology 36, 91–117.CrossRefGoogle ScholarPubMed
Lawrence, J. (1992). History of bovine theileriosis in southern Africa. In The Epidemiology of Theileriosis in Africa, eds. Norval, R. A. L, Perry, B. D. & Young, A. S., pp. 1–40. London: Academic Press.Google Scholar
Lawrence, J. A. & Norval, R. A. I. (1979). A history of ticks and tick-borne diseases of cattle in Rhodesia. Rhodesian Veterinary Journal 10, 28–40.Google Scholar
Martins, J. R. & Furlong, J. (2001). Avermectin resistance of the cattle tick Boophilus microplus in Brazil. Veterinary Record 14 July 2001, 64.Google Scholar
Martins, J. R., Correa, B. L., Ceresér, V. H. & Arteche, C. C. P. (1995). A situation report on resistance to acaricides by the cattle tick Boophilus microplus in the state of Rio Grande do Sul, southern Brazil. In Resistencia y Control en Garrapatas y Moscas de Importancia Veterinaria, III Seminario Internacional Parasitologia Animal, eds. Rodriquez, S. & Fragoso, H., Acapulco, Guerrero, Mexico, pp. 1–6.Google Scholar
Maunder, J. C. J. (1949). Cattle tick control: results achieved in the field with DDT and BHC. Queensland Agricultural Journal September, 1–8.Google Scholar
McDougall, K. W. & Machin, M. V. (1988). Stabilization of the carbamate acaricide promacyl in cattle dipping fluid. Pesticide Science 22, 307–315.CrossRefGoogle Scholar
Miller, J. A., Davey, R. B., Oehler, D. D., Pound, J. M. & George, J. E. (1999). Control of Boophilus annulatus (Acari: Ixodidae) on cattle using injectable microspheres containing ivermectin. Journal of Economic Entomology 92, 1142–1146.CrossRefGoogle ScholarPubMed
Miller, J. A., Davey, R. B., Oehler, D. D., Pound, J. M. & George, J. E. (2001). The Ivomec SR bolus for control of Boophilus annulatus (Acari: Ixodidae) on cattle in South Texas. Journal of Economic Entomology 94, 1622–1627.CrossRefGoogle ScholarPubMed
Miller, R. J., Davey, R. B. & George, J. E. (2002). Modification of the Food and Agriculture Organization Larval Packet Test to measure amitraz-susceptibility against Ixodidae. Journal of Medical Entomology 39, 645–651.CrossRefGoogle ScholarPubMed
Miller, R. J., George, J. E., Guerrero, F., Carpenter, L. & Welch, J. B. (2001). Characterization of acaricide resistance in Rhipicephalus sanguineus (Latrille) (Acari: Ixodidae) collected from the Corozal Army Veterinary Quarantine Center, Panama. Journal of Medical Entomology 38, 298–302.CrossRefGoogle Scholar
Mohler, J. R. (1906). Texas or tick fever and its prevention. United States Department of Agriculture Farmer's Bulletin258, 1–45.Google Scholar
Muniz, R. A., Hernandez, F., Lombardero, O., et al. (1995). Efficacy of injectable doramectin against natural Boophilus microplus infestations in cattle. American Journal of Veterinary Research 56, 460–463.Google ScholarPubMed
Nari, A. & Hansen, J. W. (1999). Resistance of Ecto- and Entoparasites: Current and Future Solutions, Technical Report No. 67 SG/10. Paris: Office International des Epizooties.Google Scholar
Newton, L. G. (1967). Acaricide resistance and cattle tick control. Australian Veterinary Journal 43, 389–394.CrossRefGoogle ScholarPubMed
Nolan, J. (1981). Current developments in resistance to amidine and pyrethroid tickicides in Australia. In Tick Biology and Control, eds. Whitehead, G. B. & Gibson, J. D., pp. 109–114. Grahamstown, South Africa: Tick Research Unit, Rhodes University.Google Scholar
Nolan, J. (1990). Acaricide resistance in single and multi-host ticks and strategies for control. Parassitologia 32, 145–153.Google ScholarPubMed
Nolan, J. & Schnitzerling, H. J. (1986). Drug resistance in arthropod parasites. In Chemotherapy of Parasitic Diseases, eds. Campbell, W. C. & Rew, R. S., pp. 603–620. New York: Plenum Press.CrossRefGoogle Scholar
Nolan, J., Roulston, W. J. & Schnitzerling, H. J. (1979). The potential value of some synthetic pyrethroids for control of the cattle tick (Boophilus microplus). Australian Veterinary Journal 55, 463–466.CrossRefGoogle Scholar
Norris, K. R. & Stone, B. F. (1956). Toxaphene-resistant cattle ticks (Boophilus microplus (Canestrini)) occurring in Queensland. Australian Journal of Agricultural Research 7, 211–226.CrossRefGoogle Scholar
Norton, G. A., Sutherst, R. W. & Maywald, G. F. (1983). A framework for integrating control methods against the cattle tick, Boophilus microplus, in Australia. Journal of Applied Ecology 20, 489–505.CrossRefGoogle Scholar
Norval, R. A. I., Fivaz, B. H., Lawrence, J. A. & Brown, A. F. (1984). Epidemiology of tick-borne diseases of cattle in Zimbabwe. II. Anaplasmosis. Tropical Animal Health and Production 16, 63–70.CrossRefGoogle ScholarPubMed
Ortiz, E. M., Santamaria, E. M. & Fragoso, S. H. (1994). Resistencia en garrapatas Boophilus microplus, a los ixodicidas en Mexico. In Proceedings of the 14th Pan American Congress on Veterinary Sciences, eds. Trujillo, Perez J. M. & Padilla, Gonzales E., Acapulco, Guerrero, Mexico, pp. 473–474.Google Scholar
Palmer, B. H., McCarthy, J. F., Kozlik, A. & Harrison, I. R. (1971). A new chemical group of cattle acaricides. Proceedings of the 3rd International Congress of Acarology, Prague, pp. 687–691.Google Scholar
Perry, B. D. (1992). History of east coast fever in eastern and central Africa. In The Epidemiology of Theileriosis in Africa, eds. Norval, R. A. I., Perry, B. D. & Young, A. S., pp. 41–62. London: Academic Press.Google Scholar
Rechav, Y. (1987). Use of acaricide-impregnated ear tags for controlling the brown ear tick (Acari: Ixodidae) in South Africa. Journal of Economic Entomology 80, 822–825.CrossRefGoogle Scholar
Remington, B., Kieran, P., Cobb, R. & Bodero, D. (1997). The application of moxidectin formulations for control of the cattle tick (Boophilus microplus) under Queensland field conditions. Australian Veterinary Journal 75, 588–591.CrossRefGoogle ScholarPubMed
Riddles, P. W. & Nolan, J. (1986). Prospects for the management of arthropod resistance to pesticides. In Parasitology – Quo Vadit?, Proceedings of the 6th International Congress of Parasitology, ed. Howell, M. J., pp. 679–687.
Romero, A., Benavides, E., Herrera, C. & Parra, M. H. (1997). Resistencia de la garrapata Boophilus microplus a acaricides organofosforados y piretroides sintéticos en el departamento del Huila. Revista Colombiana de Entomologia 23, 9–17.Google Scholar
Rosario-Cruz, R., Guerrero, F. D.Miller, R. J., et al. (2005). Roles played by esterase activity and by a sodium channel mutation involved in pyrethroid resistance in populations of Boophilus microplus (Acari: Ixodidae) collected from Yucatan, Mexico. Journal of Medical Entomology 42, 1020–1025.CrossRefGoogle ScholarPubMed
Roulston, W. J., Stone, B. F., Wilson, J. T. & White, L. I. (1968). Chemical control of an organophosphorus- and carbamate-resistant strain of Boophilus microplus (Can.) from Queensland. Bulletin of Entomological Research 58, 379–392.CrossRefGoogle Scholar
Roush, R. T. (1993). Occurrence, genetics and management of insecticide resistance. Parasitology Today 9, 174–179.CrossRefGoogle ScholarPubMed
Roy-Smith, F. (1975). Amitraz: Australian field trials against the cattle tick (Boophilus microplus). Proceedings of the 8th British Insecticide and Fungicide Conference, pp. 565–571.Google Scholar
Sabatini, G. A., Kemp, D. H., Hughes, S., Nari, A. & Hansen, J. (2001). Tests to determine LC50 and discriminating doses for macrocyclic lactones against the cattle tick, Boophilus microplus. Veterinary Parasitology 95, 53–62.CrossRefGoogle ScholarPubMed
Sangster, N. C. (2001). Managing parasiticide resistance. Veterinary Parasitology 98, 89–109.CrossRefGoogle ScholarPubMed
Sangster, N., Batterham, P., Chapman, H. D., et al. (2002). Resistance to antiparasitic drugs: the role of molecular diagnosis. International Journal for Parasitology 32, 637–653.CrossRefGoogle ScholarPubMed
Schnitzerling, H. J. & Walker, T. B. (1985). Factors affecting the performance of acaricides used for control of the cattle tick, Boophilus microplus. Tropical Pest Management 31, 199–203.CrossRefGoogle Scholar
Schnitzerling, H. J., Nolan, J. & Hughes, S. (1983). Toxicology and metabolism of some synthetic pyrethroids in larvae of susceptible and resistant strains of the cattle tick Boophilus microplus (Can.). Pesticide Science 14, 64–72.CrossRefGoogle Scholar
Schnitzerling, H. J., Nolan, J. & Hughes, S. (1989). Toxicology and metabolism of isomers of flumethrin in larvae of pyrethroid-suceptible and resistant strains of the cattle tick Boophilus microplus (Acari: Ixodidae). Experimental and Applied Acarology 6, 47–54.CrossRefGoogle Scholar
Schuntner, C. A., Schnitzerling, H. J. & Roulston, W. J. (1971). Carbaryl metabolism in larvae of organophosphorus and carbamate-susceptible and -resistant strains of cattle tick Boophilus microplus. Pesticide Biochemistry and Physiology 1, 424–433.CrossRefGoogle Scholar
Shaw, R. D. (1969). Tick control on domestic animals. I. A brief history of the economic significance of tick infestations. Tropical Science 11, 113–119.Google Scholar
Shaw, R. D. (1970). Tick control on domestic animals. II. The effect of modern treatment methods. Tropical Science 12, 29–36.Google Scholar
Smith, T. & Kilborne, F. L. (1893). Investigations into the nature, causation, and prevention of Texas or southern cattle fever. United States Department of Agriculture, Bureau of Animal Industries Bulletin 1, 1–301.Google Scholar
Soberanes, N., Santamaria, M., Fragoso, H. & Garcia, Z. (2002). Primer caso de resistencia al amitraz en garrapata del Ganado Boophilus microplus en México. Técnica Pecuaria en México 40, 81–92.Google Scholar
Soll, M. D., Benz, G. W., Carmichael, I. H. & Gross, S. J. (1990). Efficacy of ivermectin delivered from an intraruminal sustained-released bolus against natural infestations of five African tick species on cattle. Veterinary Parasitology 37, 285–295.CrossRefGoogle Scholar
Solomon, K. R. (1983). Acaricide resistance in ticks. Advances in Veterinary Science and Comparative Medicine 27, 273–296.Google ScholarPubMed
Sonenshine, D. E. (2006). Tick pheromones and their use in tick control. Annual Review of Entomology 51, 557–580.CrossRefGoogle ScholarPubMed
Stanford, G. D., Baker, J. A. F., Ratley, C. V. & Taylor, R. J. (1981). The development of a stabilized amitraz cattle dip for control of single and multi-host ticks and their resistant strains in South Africa. In Proceedings of a Conference on Tick Biology and Control, eds. Whitehead, G. B. & Gibson, J. D., Rhodes University, Grahamstown, South Africa, pp. 143–181.Google Scholar
Stendel, W. (1985). Experimental studies on the tickicidal effect of Bayticol® Pour-on. Veterinary Medical Report 2, 99–111.Google Scholar
Stone, B. F. & Meyers, R. A. J. (1957). Dieldrin-resistant cattle ticks, Boophilus microplus (Canestrini), in Queensland. Australian Journal of Agricultural Research 8, 312–317.CrossRefGoogle Scholar
Strydom, T. & Peter, R. (1999). Acaricides and Boophilus spp. resistance in South Africa. In Control de la Resistencia en Garrapatas y Moscas de Importancia Veterinaria y Enfermedades que Transmiten, IV Seminario Internacional de Parasitologia Animal, eds. Morales, G., Fragosa, H. & Garcia, Z., Puerto Vallarta, Jalisco, Mexico, pp. 35–40.Google Scholar
Stubbs, V. K., Wilshire, C. & Webber, G. (1982). Cyhalothrin: a novel acaricidal and insecticidal synthetic pyrethroid for the control of the cattle tick (Boophilus microplus) and the buffalo fly (Haematobia irritans exigua). Australian Veterinary Journal 59, 152–155.CrossRefGoogle Scholar
Sutherst, R. W. & Comins, H. N. (1979). The management of acaricide resistance in the cattle tick, Boophilus microplus (Canestrini) (Acari: Ixodidae), in Australia. Bulletin of Entomological Research 69, 519–537.CrossRefGoogle Scholar
Sutherst, R. W., Norton, G. A., Barlow, N. D., et al. (1979). An analysis of management strategies for cattle tick (Boophilus microplus) control in Australia. Journal of Applied Ecology 16, 359–382.CrossRefGoogle Scholar
Tabashnik, B. E. (1990). Modeling and evaluation of resistance management tactics. In Pesticide Resistance in Arthropods, eds. Roush, R. T. & Tabashnik, B. E., pp. 153–182. New York: Chapman & Hall.Google Scholar
Taylor, M. A. (2001). Recent development in ectoparasiticides. Veterinary Journal 161, 253–268.CrossRefGoogle ScholarPubMed
Teel, P. D., Hair, J. A. & Stratton, L. G. (1979). Laboratory valuation of a sustained-release famphur bolus against gulf coast and lone star ticks feeding on Hereford heifers. Journal of Economic Entomology 72, 230–233.CrossRefGoogle Scholar
Temeyer, K. B., Pruett, J. H., Untalan, P. M. & Chen, A. C. (2006). Baculovirus expression of BmAChE3, a cDNA encoding an acetylcholinesterase of Boophilus microplus (Acari: Ixodidae). Journal of Medical Entomology 43, 707–712.CrossRefGoogle Scholar
Ware, G. W. (2000). The Pesticide Book, 5th edn. Fresno, CA: Thomson Publications.Google Scholar
Wharton, R. H. (1976). Tick-borne livestock diseases and their vectors. V. Acaricide resistance and alternative methods of tick control. World Animal Review 20, 8–15.Google Scholar
Wharton, R. H. & Roulston, W. J. (1970). Resistance of ticks to chemicals. Annual Review of Entomology 15, 381–403.CrossRefGoogle Scholar
Wharton, R. H., Roulston, W. J., Utech, K. B. W. & Kerr, J. D. (1970). Assessment of the efficiency of acaricides and their mode of application against the cattle tick Boophilus microplus. Australian Journal of Agricultural Research 21, 985–1006.CrossRefGoogle Scholar
Whitehead, G. B. (1958). A review of insecticide resistance in the blue tick, Boophilus decoloratus, in South Africa. Indian Journal of Malariology 12, 427–432.Google ScholarPubMed
Whitnall, A. B. M., Mchardy, W. M., Whitehead, G. B. & Meerholz, F. (1951). Some observations on the control of the bont tick, Amblyomma hebraeum Koch. Bulletin of Entomological Research 41, 577–591.CrossRefGoogle Scholar
Young, A. S., Castro, J. J. & Kiza-Auru, P. P. (1985). Control of tick (Acari: Ixodidae) infestation by application of ear tags impregnated with acaricides to cattle in Africa. Bulletin of Entomological Research 75, 609–619.CrossRefGoogle Scholar

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