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2003 | 49 | 4 |

Tytuł artykułu

Opornosc stawonogow hematofagicznych - narastajacy problem. 1.Mechanizmy opornosci na insektycydy

Autorzy

Treść / Zawartość

Warianty tytułu

Języki publikacji

PL

Abstrakty

EN
Resistance in the hematophagous arthropods - problem on the rise. I. Resistance mechanisms to insecticides. Hematophagous arthropods are pesky but can also be very dangerous to human health due to their ability to act as vectors to many viral, bacterial or parasite-related diseases. The common application of chemicals to control pests leaded to the increasing resistance to pesticides among both insects and ticks. The causes underlying the appearance of the resistance and the mechanisms involved are presented in this article. The description of mechanisms is presented starting from decreased penetration of the pesticide, to an increase in metabolism of pesticide, to the reduced sensitivity of the pesticide's target.

Wydawca

-

Rocznik

Tom

49

Numer

4

Opis fizyczny

s.351-356,bibliogr.

Twórcy

autor
  • Instytut Parazytologii PAN, ul.Twarda 51/55, 00-818 Warszawa

Bibliografia

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  • Chandre F., Darriet F., Darder M., Cuany A., Doannio J.M.C., Pasteur N., Guillet P. 1998. Pyrethroid resistance in Culex qinquefasciatus from West Africa. Medical and Veterinary Entomology 12: 359-366.
  • Chen L. 1994. Production, formulation and storage of BT. VIth International Colloquium on Invertebrate Pathology and Microbial Control, Montpellier, 1: 74.
  • Crampton A.L., Baxter G.D., Barker S.C. 1999. A new family of cytochrome P450 genes (CYP41) from the cattle tick, Boophilus microplus. Insect Biochemistry and Molecular Biology 29: 829-34.
  • Feyereisen R. 1999. Insect P450 enzymes. Annual Review of Entomology 44: 507-533.
  • Ffrench-Constant R.H., Steichen J., Rocheleau T.A., Aronstein K., Roush R.T. 1993. A single amino acid substitution in a b-aminobutyric acid subtype A receptor locus associated with cyclodiene insecticide resistance in Drosophila populations. Proceedings of the National Academy of Sciences of the United States of America 90: 1957-1961.
  • Georghiou G.P. 1994. Mechanisms and microbial characteristics of invertebrate resistance to bacterial toxins. VIth International Colloquium on Invertebrate Pathology and Microbial Control, Montpellier, 1: 48-50.
  • Grant D.F., Matsumura F. 1988. Glutathione S-transferase in Aedes aegypti larvae. Purification and properties. Insect Biochemistry 18: 615-622.
  • Hemingway J., Coleman M., Paton M., McCarroll L., Vaughan A., DeSilva D. 2000. Aldehyde oxidase is coamplified with the World's most common Culex mosquito insecticide resistance-associated esterases. Insect Molecular Biology 9: 93-99.
  • Jamroz R.C., Guerrero F.D., Kammlah D.M., Kunz S.E. 1998. Role of the kdr and super-kdr sodium channel mutations in pyrethroid resistance: correlation of allelic frequency to resistance level in wild and laboratory populations of horn flies (Haenatobia irritans). Insect Biochemistry and Molecular Biology 28: 1031-1037.
  • Kasai S., Scott J.G. 2000. Overexpression of cytochrome P450 CYP6D1 is associated with monooxygenase-mediated pyrethroid resistance in house flies from Georgia. Pesticide Biochemistry and Physiology 68: 34-41.
  • Keller M., Sneh B., Strizhov N., Prudovsky E., Regev A., Koncz C. 1996. Digestion of delta-endotoxin by gut proteases may explain reduced sensitivity of advanced instar larvae of Spodoptera littoralis to CryIC. Insect Biochemistry and Molecular Biology 26: 365-373.
  • Montagna C.M., Anguiano O.L., Gauna L.E., Pechen de d-Angelo A.M. 2003. Mechanisms of resistance to DDT and pyrethroids in Patagonian populations of Simulium blackflies. Medical and Veterinary Entomology 17: 95-101.
  • Mumcuoglu K. Y., Hemingway J., Miller H., Ioffe-Uspensky I., Klaus S., Ben-Ishai F., Galun R. 1995. Permethrin resistance in the head louse Pediculus capitis from Israel. Medical and Veterinary Entomology 9: 427-432.
  • Mutero A., Pralavorio M., Bride J.M., Fournier D. 1994. Resistance-associated point mutations in insecticide-insensitive acetylcholinesterase. Proceedings of the National Academy of Sciences of the United States of America 91: 5922-5926.
  • N'Guessan R., Darriet F., Guillet P., Carnevale P., Traore-Lamizana M., Corbel V., Koffi A.A., Chandre F. 2003. Resistance to carbosulfan in Anopheles gambiae from Ivory Coast, based on reduced sensitivity of acetylcholinesterase. Medical and Veterinary Entomology 17: 19-25.
  • Nielsen-Leroux C., Pasquier F., Charles J.F., Sinegre G., Gaven B., Pasteur N. 1997 Resistance to Bacillus Sphaericus involves different mechanisms in Culex pipiens (Diptera:Culicidae) larvae. Journal of Medical Entomology 34: 321-327.
  • Picollo M.I., Vassena C.Y., Mougabure Cueto G.A., Vernetti M., Zerba E.N. 2000. Resistance to insecticides and effect of synergists on permethrin toxicity in Pediculus capitis (Anoplura: Pediculidae) from Buenos Aires. Journal of Medical Entomology 37: 721-725.
  • Prapanthadara L., H. Ranson H., Somboon P., Hemingway J. 1998. Cloning, expression and characterization of an insect class I glutathione S-transferase from Anopheles dirus species B. Insect Biochemistry and Molecular Biology 28: 321-329.
  • Ranson H., Cornel A.J., Fournier D., Vaughan A., Collins F.H., Hemingway J. 1997. Cloning and localization of a glutathione S-transferase class I gene from Anopheles gambiae. The Jourrial of Biological Chemistry 272: 5464-5468.
  • Ranson H., Jensen B., Vulule J.M., Wang X., Hemingway J., Collins F.H. 2000. Identification of a point mutation in the voltage-gated sodium channel gene of Kenyan Anopheles gambiae associated with resistance to DDT and pyrethroids. Insect Molecular Biology 9: 491-497.
  • Raymond M., Marquine M. 1994. Evolution of insecticide resistance in Culex pipiens populations: the Corsican paradox. Journal of Evolutionary Biology 7: 315-337.
  • Rupes V.J., Moravec J., Chmela J., Ledvinka J., Zelenkova J. 1995. A resistance of head lice (Pediculus capitis) to permethrin in the Czech Republic. Journal of Public Health Medicine 3: 30-32.
  • Scott J.A. 1995. The molecular genetics of resistance: resistance as a response to stress. Florida Entomologist 78: 399-414.
  • Scott J.A., Collins F.H., Feyereisen R. 1994. Diversity of cyto-chrome P450 genes in the mosquito, Anopheles albimanus. Biochemical and biophysical research communications 205: 1452-1459.
  • Small G.J., Karunaratne S.H., Hemingway J. 1998. Characterization of amplified esterase Estbetal(2) associated with organophosphate resistance in a multi-resistant population of the mosquito Culex quinquefasciatits from Cuba. Medical and Veterinary Entomology 12: 187-91.
  • Tabashnik B.E., Malvar T., Liu Y.B., Finson N., Borthakur D., Shin B.S., Park S.H., Masson L., de Maagd R.A., Bosch D. 1996. Cross-resistance of the diamondback moth indicates altered interactions with domain II of Bacillus thuringiensis toxins. Applied and Environmental Microbiology 62: 2839-2844.
  • Williamson M.S., Martinez-Torrez D., Hick C.A., Devonshire A.L. 1996. Identification of mutations in the housefly para-type sodium channel gene associated with knockdown resistance (kdr) to pyrethroid insecticides. Molecular & General Genetics MGG 252: 51-60.

Typ dokumentu

Bibliografia

Identyfikatory

Identyfikator YADDA

bwmeta1.element.agro-article-98f920cd-0b25-48ab-817a-f29edee1574d
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