Мобильная версия

Доступно журналов:

3 288

Доступно статей:

3 891 637

 

Скрыть метаданые

Автор B‐Bernard, Claude
Автор Philogène, Bernard J. R.
Дата выпуска 1993
dc.description Synergists have been used commercially for about 50 years and have contributed significantly to improve the efficacy of insecticides, particularly when problems of resistance have arisen. In the current article we review the nature, mode of action, role in resistance management, natural occurrence, and significance in research of insecticide synergists. These natural or synthetic chemicals, which increase the lethality and effectiveness of currently available insecticides, are by themselves considered nontoxic. The mode of action of the majority of synergists is to block the metabolic systems that would otherwise break down insecticide molecules. They interfere with the detoxication of insecticides through their action on poly‐substrate monooxygenases (PSMOs) and other enzyme systems.The role of synergists in resistance management is related directly to an enzyme‐inhibiting action, restoring the susceptibility of insects to the chemical, which would otherwise require higher levels of the toxicant for their control. For this reason synergists are considered straightforward tools for overcoming metabolic resistance, and can also delay the manifestation of resistance. However, the full potential of these compounds may not have been realized in resistance management. Synergists have an important role to play in the ongoing investigation of insecticide toxicity and mode of action and the nature of resistance mechanism. They also can be used in understanding the effects of other xenobiotics in non‐target organisms. The search for and the need of new molecules capable of synergizing existing or new pesticides has reactivated the identification and characterization of secondary plant compounds possessing such activity. Plants do possess and utilize synergists to overcome the damage produced by phytophages. This has to be exploited in pest management programs. Hopefully, it will lead to a new perspective on the nature and significance of synergism.
Формат application.pdf
Издатель Taylor & Francis Group
Копирайт Copyright Taylor and Francis Group, LLC
Название Insecticide synergists: Role, importance, and perspectives
Тип review-article
DOI 10.1080/15287399309531712
Print ISSN 0098-4108
Журнал Journal of Toxicology and Environmental Health
Том 38
Первая страница 199
Последняя страница 223
Аффилиация B‐Bernard, Claude; Ottawa‐Carleton Centre for Graduate Studies in Biology, University of Ottawa
Аффилиация Philogène, Bernard J. R.; Ottawa‐Carleton Centre for Graduate Studies in Biology, University of Ottawa
Выпуск 2
Библиографическая ссылка Agosin, M. 1985. “Role of microsomal oxidations in insecticide degradation”. In Comprehensive Insect Physiology, Biochemistry and Pharmacology, Edited by: Kerkut, C. A. and Gilbert, L. I. vol. 11, 647–712. London: Pergamon Press.
Библиографическая ссылка Ahmad, S., Brattsten, L. B., Mullin, C. A. and Yu, S. J. 1986. “Enzymes involved in the metabolism of plant allelochemicals”. In Molecular Aspects of Insect‐Plant Associations, Edited by: Brattsten, L. B. and Ahmad, S. 73–152. New York: Plenum Press.
Библиографическая ссылка Arnason, J. T., Philogène, B. J. R., Moran, P., Imrie, K., Lyengar, S., Duval, F., Soucy‐Breau, C., Sciano, J. C., Werstiuk, N. H., Hasspieler, B. and Downe, A. E. R. 1989. “Naturally occurring and synthetic thiophenes as photoactivated insecticides”. In Insecticides of Plant Origin, ACS Symposium Series 387 Edited by: Arnason, J. T., Philogène, B. J. R. and Morand, P. 164–172. Washington, DC: American Chemical Society.
Библиографическая ссылка Awasthi, M. D. and Mukerjee, S. K. 1977. Evaluation of dillapiole and dihydro‐dillapiole as synergists for DDVP. Pesticides, 11: 29–30.
Библиографическая ссылка Bagwell, R. D. 1989. “Evaluation of pyrethroid resistance plan and the use of amitraz as an insecticide Synergist for resistant tobacco budworms (Lepidoptera: Noctuidae) in cotton”. Texas A&M University, College Station. M. S. thesis
Библиографическая ссылка Bagwell, R. D. and Plapp, F. W. Jr. 1992. Synergism of insecticides against susceptible and pyrethroid‐resistant tobacco budworm (Lepidoptera: Noctuidae) by amitraz. J. Econ. Entomol., 85(3): 658–663.
Библиографическая ссылка Beier, R. C. 1990. Natural pesticides and bioactive components in foods. Rev. Environ. Contam. Toxicol., 113: 47–137.
Библиографическая ссылка Berenbaum, M. and Neal, J. J. 1985. Synergism between myristicin and xanthotoxin, a naturally cooccurring plant toxicant. J. Chem. Ecol., 11: 1349–1358.
Библиографическая ссылка Bernard, C. B. 1988. “Effect of lignans in associations with naturally occurring allelochemicals from the Asteraceae on the detoxification enzymes and the life cycle of an herbivorous Lepidoptera”. Canada: University of Ottawa. Ostrinia nubilalis, Hubner. Master's thesis
Библиографическая ссылка Bernard, C. B., Arnason, J. T., Philogène, B. J. R., Lam, J. and Waddell, T. 1989. Effect of lignans and other secondary metabolites of the Asteraceae on the PSMO activity of the European corn borer, Ostrinia nubilalis. Phytochemistry, 28: 1373–1378.
Библиографическая ссылка Bernard, C. B., Arnason, J. T., Philogène, B. J. R., Lam, J. and Waddell, T. 1990. In vivo effect of mixtures of allelochemicals on the life cycle of the European corn borer, Ostrinia nubilalis. Entomol. Exp. Appl., 57: 17–22.
Библиографическая ссылка Bowers, W. S. 1968. Juvenile hormone: Activity of natural and synthetic synergists. Science, 161: 895–897.
Библиографическая ссылка Brattsten, L. B. 1979. “Biochemical defense mechanisms in herbivores against plant allelochemicals”. In Herbivores: Their Interaction with Secondary Plant Metabolites, 199–210. New York: Academic Press.
Библиографическая ссылка Brattsten, L. B. 1988. “Potential role of plant allelochemicals in the development of insecticide resistance”. In Novel Aspects of Insect‐Plant Interactions, Edited by: Barbosa, P. and Letourneau, D. K. 313–348. New York: Wiley.
Библиографическая ссылка Brattsten, L. B. and Metcalf, R. L. 1970. The synergistic ratio of carbaryl with piperonyl butoxide as an indicator of the distribution of multifunction oxydases in Insecta. J. Econ. Entomol., 63: 101–104.
Библиографическая ссылка Brattsten, L. B., Holyoke, C. W., Leeper, J. R. and Raffa, K. F. 1986. Insecticide resistance: Challenge to pest management and basic research. Science, 231: 1255–1260.
Библиографическая ссылка Brindley, W. A. 1977. Synergist differences as an alternate interpretation of carbaryl‐piperonyl butoxide toxicity data. Environ. Entomol., 6: 885–888.
Библиографическая ссылка Brindley, W. A. and Selim, A. A. 1984. Synergism and antagonism in the analysis of insecticide resistance. Environ. Entomol., 13: 348–353.
Библиографическая ссылка Brooks, G. T., Pratt, G. E. and Jennings, R. C. 1979. The action of precocenes in milkweed bugs (Oncopeltus fasciatus) and locusts (Locusta migratoria). Nature, 281: 570–572.
Библиографическая ссылка Brown, T. M. 1990. “Biochemical and genetic mechanisms of insecticide resistance”. In Managing Resistance to Agrochemicals: From Fundamental Research to Practical Strategies, ACS Symposium Series 421 Edited by: Green, M. B., LeBaron, H. M. and Moberg, W. K. 61–76. Washington, D.C.: ACS.
Библиографическая ссылка Burden, R. S. and Crombie, L. 1969. Amides of vegetable origin: part XII. A new series of alka‐2,4‐dienoic tyramine‐amides from Anacyclus pyrethrum D.C. (Compositae). J. Chem. Soc., : 2477–2481.
Библиографическая ссылка Casida, J. E. 1970. Mixed‐function oxidase involvement in the biochemistry of insecticide synergists. J. Agric. Food Chem., 18: 753–772.
Библиографическая ссылка Casida, J. E., Palmer, C. J. and Cole, L. M. 1985. Bicycloorthocarboxylate convulsants, potent GABA‐A receptor antagonists. Mol. Pharmacol., 28: 246–253.
Библиографическая ссылка Chang, C. P. and Plapp, F. W. 1983. DDT and synthetic pyrethroids: Mode of action, selectivity and mechanism of synergism in the tobacco budworm, Heliothis virescens (F.), and a predator Chrysopa carnea Stephens. J. Econ. Entomol., 76: 1206–1210.
Библиографическая ссылка Cline, L. D., Zettler, J. L., McDonald, L. L. and Highland, H. A. 1984. Continuous exposure to sublethal doses of synergized pyrethrins: Effects of resistance and repellency In Tribolium confusum (Coleoptera: Tenebionidae). J. Econ. Entomol., 77: 1189–1193.
Библиографическая ссылка Corbett, J. R., Wright, K. and Baillie, A. C., eds. 1984. The Biochemical Mode of Action of Pesticides, New York: Academic Press.
Библиографическая ссылка Croft, B. A. 1990. “Developing a philosophy and program of pesticide resistance management”. In Pesticide Resistance in Arthropods, Edited by: Roush, R. T. and Tabashnik, B. E. 277–296. New York: Chapman and Hall.
Библиографическая ссылка Donskotch, R. W. and EIFeraly, F. S. 1969. Isolation and characterization of (+)‐sesamin and cyclopyrethrosin from pyrethrum flowers. Can. J. Chew., 47: 1139–1142.
Библиографическая ссылка El‐Guindy, M. A., El‐Satar, M. M. and Madi, S. M. 1980. Synergísts as potentiators to juvenile hormone analogues in susceptible and fenitrothion‐resistant strains of the cotton leafworm Spodoptera littoralis (Boisd.). Z. Angew. Entomol., 90: 520–525.
Библиографическая ссылка Food and Agriculture Organization. 1978. “Panel of experts on pest resistance to pesticides. Report of meeting Aug. 28‐Sept. 1 as summerized by J. Dekker”. In Fungicide Resistance in Crop Protection, Edited by: Dekker, J. and Ceorgopoulos, S. C. 2Wageningen, , The Netherlands: Centre for Agricultural Publishing and Documents.
Библиографическая ссылка Franklin, M. R. 1976. Methylenedioxyphenyl insecticide synergists as potential health hazards. Environ. Health Perspect., 14: 29–37.
Библиографическая ссылка Georghiou, G. P. 1980. Insecticide resistance and prospects for its management. Res. Rev., 76: 131–145.
Библиографическая ссылка Georghiou, G. P. 1990. “Overview of insecticide resistance”. In Managing Resistance to Agrochemicals: From Fundamental Research to Practical Strategies, ACS Series 421 Edited by: Green, M. B., LeBaron, H. M. and Moberg, W. K. 18–41. Washington, D.C.: ACS.
Библиографическая ссылка Granett, J. and Hejazi, M. J. 1983. Synergism of two benzophenyl urea insect growth regulators. J. Econ. Entomol., 76: 403–406.
Библиографическая ссылка Green, M. B., LeBaron, H. M. and Moberg, W. K., eds. 1990. Managing Resistance to Agrochemicals: From Fundamental Research to Practical Strategies, ACS Series 421 Washington, D.C.: ACS.
Библиографическая ссылка Greger, H. 1981. Sesamin‐type lignans as chemical markers within Artemisia. Biochem. System Ecol., 9: 165–169.
Библиографическая ссылка Habib, M. E. M. and Garcia, M. A. 1981. Compatibility and synergism between Bacillus thuringiensis var. kurstaki and two chemical insecticides. Z. Angew. Entomol., 91: 7–14.
Библиографическая ссылка Haller, H. L., McGovran, E. R., Goodhue, L. D. and Sullivan, W. N. 1942. The synergistic action of sesamin with pyrethrum insecticides. J. Org. Chem., 7: 183–188.
Библиографическая ссылка Handa, S. K. and Dewan, R. S. 1974. Evaluation of dillapiole and dihydrodillapiole as synergists for pyrethrins in dust formulations. Pyrethrum Post, 13(2): 45–46.
Библиографическая ссылка Haplin, R. A., Vyas, K. P., El‐Naggar, S. F. and Jerina, D. M. 1984. Metabolism and hepatotoxicity of the naturally occurring benzo[b]pyran precocene I. Chem.‐Biol. Interact., 48: 297–315.
Библиографическая ссылка Hemingway, J., Jayawordena, K. G. I., Weerasinghe, I. and Herath, P. R. J. 1987. The use of biochemical tests to identify multiple insecticide resistance mechanisms in field‐selected populations of Anopheles subpictus Grassi (Diptera: Culicidae). Bull. Ent. Res., 77: 57–66.
Библиографическая ссылка Hodgson, E. 1985. “Microsomal mono‐oxygenases”. In Comprehensive Insect Physiology, Biochemistry and Pharmacology, Edited by: Kerkut, G. A. and Gilbert, L. I. vol. 12, 225–321. London: Pergamon Press.
Библиографическая ссылка Hubert, J. J., Carter, E. M. and Kolar, J. J. 1989. Defining, estimating and testing the significance of the Synergist ratio for replicated quantal bioassays, Statistical series 1989–212 1–8. Canada: Department of Mathematics and Statistics, University of Guelph.
Библиографическая ссылка Jones, W. A., Beroza, M. and Becker, E. D. 1962. Isolation and structure of sesangolin, a constituent of Sesamum angolense (Welw). J. Org. Chem., 27: 3232–3235.
Библиографическая ссылка Jurd, L., Fye, R. L. and Morgan, J. Jr. 1979. New types of insect chemosterilants. Benzylphenols and benzyl‐1,3‐benzodioxole derivatives as additives to housefly diet. J. Agric. Food Chem., 27: 1007–1016.
Библиографическая ссылка Klocke, J. A., Balandrin, M. F., Barnby, M. A. and Yamasaki, R. B. 1989. “Limonoids, phenolics, and furanocoumarins as insect antifeedants, repellents, and growth inhibitory compounds”. In Insecticides of Plant Origin, ACS Symposium Series 387 Edited by: Arnason, J. T., Philogène, B. J. R. and Morand, P. 136–149. Washington, D.C.: ACS.
Библиографическая ссылка Knowles, C. O. and Hamad, M. S. 1969. Comparative fate of amitraz and N‘(2,4‐dimethylphenyl)‐N‐methylformamidine (SN 49844) in cotton bollworm and tobacco budworm larvae (Lepidop‐tera: Noctuidae). J. Econ. Entomol., 82: 1328–1334.
Библиографическая ссылка Leopold, R. A., Marks, E. P., Eaton, J. K. and Knoper, J. 1985. Ecdysial failures in the cotton weevil: Synergism of diflubenzuron with juvenile hormone. Pestic. Biochem. Physiol., 24: 267–283.
Библиографическая ссылка Loder, J. M., Moorhouse, A. and Rüssel, G. B. 1969. Tumor inhibitory plants: Amides of Piper novae‐hollandiae (Piperaceae). Aust. J. Chem., 22: 1531–1538.
Библиографическая ссылка Marcus, C. B., Murray, M., Hetnarski, K. and Wilkinson, C. F. 1987. Methylenedioxyphenyl complexes with microsomal cytochrome P‐450: In vivo complex formation in rat liver and in mid‐gut tissues of the southern armyworm. Spodoptera eridania. Pestic. Biochem. Physiol., 28: 140–147.
Библиографическая ссылка Meisner, J., Ascher, K. R. S., Zur, M. and Kabonci, E. 1977. Synergistic and antagonistic effects of gossypol for phosfolan In Spodoptera littoralis larvae on cotton leaves. J. Econ. Entomol., 70: 717–719.
Библиографическая ссылка Metcalf, R. L. 1967. Mode of action of insecticide synergists. Annu. Rev. Entomol., 12: 229–256.
Библиографическая ссылка Miyakado, M., Nakayama, I., Ohno, N. and Yoshioka, H. 1983. “Structure, chemistry and actions of the Piperaceae amides: New insecticidal constituents isolated from the pepper plant”. In Natural Products for Innovative Pest Management, Edited by: Whitehead, D. and Bowers, W. 369–381. Oxford: Pergamon Press.
Библиографическая ссылка Moar, W. J., Osbrink, W. L. A. and Trumble, J. T. 1986. Potentiation of Bacillus thuringiensis var. kurstaki with thuringiensin on beet armyworm (Lepidoptera:Noctuidae). J. Econ. Entomol., 79: 1443–1446.
Библиографическая ссылка Moberg, W. K. 1990. “Understanding and combating agrochemical resistance: A chemist's perspective on an interdisciplinary challenge”. In Managing Resistance to Agrochemicals: From Fundamental Research to Practical Strategies, ACS Series 421 Edited by: Green, M. B., LeBaron, H. M. and Moberg, W. K. 1–17. Washington, D.C.: ACS.
Библиографическая ссылка Mohamed, A. I., Young, S. Y. and Yearian, W. C. 1983. Effects of microbial agent‐chemical pesticide mixtures on Heliothis virescens (F.) (Lepidoptera:Noctuidae). Environ. Entomol., 12: 478–481.
Библиографическая ссылка Moore, J. B. 1973. “Residue and tolerance considerations with pyrethrum, piperonyl butoxide, and MGK‐264”. In Pyrethrum: The Natural Insecticide, Edited by: Casida, J. E. 293–306. New York: Academic Press.
Библиографическая ссылка Moustafa, O. K., ElAttal, Z. M. and Abdallah, M. D. 1980. Duter as a synergist for insecticide formulations against cotton leafworm. J. Agric. Sci., 95: 523–524.
Библиографическая ссылка Omura, T. and Sato, R. 1964. The carbon monoxide binding pigment of liver microsomes. J. Biol. Chem., 239: 2370–2378.
Библиографическая ссылка Oppenoort, F. J. 1985. “Biochemistry and genetics of insect resistance”. In Comprehensive Insect Physiology, Biochemistry and Pharmacology, Edited by: Kerkut, G. A. and Gilbert, L. I. vol. 11, 731–774. London: Pergamon Press.
Библиографическая ссылка Payne, G. T. and Brown, T. M. 1984. EPN and S,S,S‐tributyl phophorotrithioate as synergists of methyl parathion in resistant tobacco budworm larvae (Lepidoptera: Noctuidae). J. Econ. Entomol., 77: 294–297.
Библиографическая ссылка Pitman, G. B., Hedden, R. L. and Gara, R. I. 1975. Synergistic effects of ethyl alcohol on the aggregation of Dendroctonus pseudotsugae (Col.: Scolytidae) in response to pheromones. Z. Angew. Entomol., 78: 203–208.
Библиографическая ссылка Plapp, F. W. Jr. 1979. Synergism of pyrethroid insecticides by foramidines. J. Econ. Entomol., 72: 667–670.
Библиографическая ссылка Plapp, F. W. Jr. 1986. “Genetic and biochemistry of insecticide resistance in arthropods: Prospect the future”. In Pesticide Resistance Strategies and Tactics for Management, Edited by: Glass, E. H. 74–86. Washington, D.C.: National Academy Press.
Библиографическая ссылка Plapp, F. W., Campanhola, C., Bagwell, R. D. and McCutchen, B. F. 1990. “Management of pyrethroid‐resistant tobacco budworms on cotton in the United States”. In Pesticide Resistance in Arthropods, Edited by: Roush, R. T. and Tabashnik, B. E. 277–296. New York: Chapman and Hall.
Библиографическая ссылка Pratt, G. E., Jennings, R. C., Hammet, G. F. and Brooks, G. T. 1980. Lethal metabolism of Precocene I to a reactive epoxide by locust corpora allata. Nature, 284: 320
Библиографическая ссылка Raffa, K. F. and Priester, T. M. 1985. Synergists as research tools and control agents in agriculture. J. Agric. Entomol., 2: 27–45.
Библиографическая ссылка Rajakulendran, S. V. and Plapp, F. W. Jr. 1982. Synergism of five synthetic pyrethroids by chlordimeform against the tobacco budworm and a predator, Chrysopa carnea. J. Econ. Entomol., 75: 1089–1092.
Библиографическая ссылка Roush, R. T. and Tabashnik, B. E., eds. 1990. Pesticide Resistance in Arthropods, New York: Chapman and Hall.
Библиографическая ссылка Satoh, T. 1987. Role of carboxylesterase in xenobiotic detoxification. Rev. Biochem. Toxicol., 8: 155–182.
Библиографическая ссылка Scott, J. G. 1990. “Investigating mechanisms of insecticide resistance: Methods, strategies, and pitfalls”. In Pesticide Resistance in Arthropods, Edited by: Roush, R. T. and Tabashnik, B. E. 39–57. New York: Chapman and Hall.
Библиографическая ссылка Scott, J. G. and Georghiou, G. P. 1986. Mechanisms responsible for high levels of permethrin resistance in the housefly. Pestic. Sci., 17: 195–206.
Библиографическая ссылка Singh, R. P., Tomar, S. S., Attri, B. S., Parmar, B. S., Maheshwari, M. L. and Mukerjee, S. K. 1976. Search for new pyrethrum synergists in some botanicals. Pyrethrum Post, 13: 91–93.
Библиографическая ссылка Soderlund, D. M. and Bloomquist, J. R. 1990. “Molecular mechanisms of insecticide resistance”. In Pesticide Resistance in Arthropods, Edited by: Roush, R. T. and Tabashnik, B. E. 58–96. New York: Chapman and Hall.
Библиографическая ссылка Soderlund, D. M., Sandborn, J. R. and Lee, P. W. 1983. “Metabolism of pyrethrins and pyrethroids in insects”. In Progress in Pesticide Biochemistry and Toxicology, Edited by: Hutson, D. H. and Roberts, T. R. vol. 3, 401–435. New York: Wiley.
Библиографическая ссылка Sun, Y. P. and Johnson, E. R. 1972. Quasi‐synergism and penetration of insecticides. J. Econ. Entomol., 65: 349–353.
Библиографическая ссылка Tanada, Y. and Hara, S. 1975. Enzyme synergistic to insect viruses. Nature, 254: 328–329.
Библиографическая ссылка Testa, B. and Jenner, P. 1981. Inhibitors of cytochrome P‐450s and their mechanism of action. Drug Metab. Rev., 12: 1–117.
Библиографическая ссылка Thongsinthusak, T. and Krieger, R. 1974. Inhibitory and inductive effects of piperonyl butoxide on dihydroisodrin hydroxylation in vivo and in vitro in black cutworms (Agrotis ypsilon) larvae. Life Sci., 14: 2131–2141.
Библиографическая ссылка Tomar, S. S., Saxena, V. S., Mahweshwari, M. L., Sarup, P. and Mukerjee, S. K. 1978. New carbaryl Synergist derived from dillapiole. Indian J. Entomol., 40: 113–116.
Библиографическая ссылка Villani, M. and Gould, F. 1985. Screaning of crude plant extracts as feeding deterrent of the wire‐worm, Melanotus communis. Entomol. Exp. Appl., 37: 69–75.
Библиографическая ссылка Wachs, H. 1947. Synergistic insecticides. Science, 105: 530–531.
Библиографическая ссылка Waddell, T. G., Osborne, C. B., Collison, R., Levine, M. J. and Cross, M. C. 1983. Erigerai, a new labdane diterpene from Erigeron philadelphicus. J. Org. Chem., 48: 4450–4453.
Библиографическая ссылка Wilkinson, C. F. Pesticide Chemistry, vol. 2, Insecticide Resistance, Synergism, Enzyme Induction. Proc. 2d Int. IUPAC Cong. Pesticide Chemistry. New York. Insecticide synergists and their mode of action, Edited by: Tahori, A. S. pp.117–159. Gordon Branch Science.
Библиографическая ссылка Wilkinson, C. F. 1976. “Insecticide synergism”. In Insecticides for the Future: Needs and Prospects, Edited by: Metcalf, R. R. and McKelvey, J. J. Jr. 195–218. New York: Wiley.
Библиографическая ссылка Wilkinson, C. F. 1983. “Role of mixed function oxidases in insecticide resistance”. In Pest Resistance to Pesticides, Edited by: Georghiou, G. P. and Saito, T. 175–205. New York: Plenum Press.
Библиографическая ссылка Wilkinson, C. F. and Hicks, L. J. 1969. Microsomal metabolism of 1–3 benzodioxole ring and its possible significance in synergistic action. J. Agric. Food Chem., 17: 829–836.
Библиографическая ссылка Wilkinson, C. F., Murray, M. and Marcus, C. B. 1984. Interaction of methylenedioxyphenyl compounds with cytochrome P‐450 and microsomal oxidation. Rev. Biochem. Toxicol., 6: 27–63.
Библиографическая ссылка Wing, K. D., Glinckman, A. H. and Casida, J. E. 1983. Oxidative bioactivation of S‐alkyl phos‐phorothioate pesticides: Stereospecificity of Prophenophos insecticide activation. Science, 219: 63–65.
Библиографическая ссылка Worthing, C. R. and Walker, S. B., eds. The Pesticide Manual, A World Compendium, , 8th ed., Croydon, , U.K.: British Crop Protection Council. British Crop Protection Control
Библиографическая ссылка Yu, S. J. and Terriere, L. C. 1974. Bimodal effect of methylenedioxyphenyl compounds on detoxifying enzymes in the housefly. Pestic. Biochem. Physiol., 4: 160–169.

Скрыть метаданые