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dc.contributor.authorNascimento, Paloma Mathias do-
dc.date.accessioned2024-09-26T15:50:54Z-
dc.date.available2024-09-26T15:50:54Z-
dc.date.issued2022-03-04-
dc.identifier.citationNASCIMENTO, Paloma Mathias. Triagem de Fitoinsumos com Potencial Anti-helmíntico Utilizando o Modelo de Organismo Caenorhabditis elegans. 2022. 72 f. Dissertação (Mestrado em Ciências Veterinárias) - Instituto de Veterinária, Universidade Federal Rural do Rio de Janeiro, Seropédica, 2022.pt_BR
dc.identifier.urihttps://rima.ufrrj.br/jspui/handle/20.500.14407/18255-
dc.description.abstractA produtividade da pecuária pode ser significativamente diminuída pelos efeitos do parasitismo gastrointestinal. Assim como, pode impactar cães e gatos e, consequentemente, seres humanos devido ao potencial zoonótico. A necessidade de alimentos sem resíduos de pesticidas, melhores condições de trabalho e aumento de casos de resistência anti-helmíntica abre um caminho para alternativas sustentáveis no controle de helmintíases, como os óleos essenciais. Neste contexto, Caenorhabditis elegans é utilizado para pesquisar fitoinsumos com atividade anti-helmíntica em diversos estágios de desenvolvimento através da avaliação toxicológica em diferentes cepas de C. elegans. Neste contexto, objetivo deste trabalho foi investigar os efeitos dos diferentes fitoinsumos no desenvolvimento do ciclo de vida de C. elegans; determinar as CL50 ou CI50 e CL90 ou CI90 dos fitoinsumos com atividade antihelmíntica; determinar o fator de resistência utilizando diferentes cepas resistentes às principais classes de antiparasitários de C. elegans; e propor uma linha analítica de testes capaz de triar fitoinsumos com possível atividade anti-helmíntica. Foram utilizados os seguintes óleos essenciais (OEs): Cymbopogon flexuosus, Eugenia caryophyllus, Illicium verum, Mentha piperita, Mentha spicata, Pelargonium graveolens e Thymus vulgaris. Estes foram solubilizados em DMSO. Foram realizados testes in vitro de letalidade em adultos de cepa selvagem (N2) e cepas resistentes à ivermectina, albendazol e levamisol, eclodibilidade de ovos e postura de ovos. O OE de I. verum resultou em melhor atividade nematicida em adultos N2. Já o OE de P. graveolens exibiu melhor inibição de eclodibilidade de ovos. Quanto à inibição da ovoposição, os OEs de C. flexuosus, E. caryophyllus, I. verum e T. vulgaris apresentaram taxa semelhante, enquanto o OE de P. graveolens não resultou atividade. Os indivíduos adultos de C. elegans resistentes à ivermectina (DA1316) mostraram-se susceptíveis aos OEs de I. verum e T. vulgaris, entretanto demonstraram resistência cruzada ao OE de P. graveolens. Os indivíduos adultos de C. elegans resistentes ao albendazol (CB3474) mostraram-se susceptíveis aos OEs de P. graveolens e T. vulgaris, entretanto demonstraram resistência cruzada ao OE de I. verum. Já os indivíduos adultos de C. elegans resistentes levamisol (CB211) demonstraram resistência cruzada a todos os OEs testados.pt_BR
dc.description.sponsorshipCoordenação de Aperfeiçoamento de Pessoal de Nível Superior - CAPESpt_BR
dc.languageporpt_BR
dc.publisherUniversidade Federal Rural do Rio de Janeiropt_BR
dc.subjectÓleos essenciaispt_BR
dc.subjectAntiparasitáriospt_BR
dc.subjectSeleçãopt_BR
dc.subjectEssential oilspt_BR
dc.subjectAntiparasiticspt_BR
dc.subjectSelectionpt_BR
dc.titleTriagem de Fitoinsumos com Potencial Anti-helmíntico Utilizando o Modelo de Organismo Caenorhabditis eleganspt_BR
dc.title.alternativeScreening of Active Phytopharmaceutical Ingredient with Anthelmintic Potential Using Caenorhabditis elegans Modelen
dc.typeDissertaçãopt_BR
dc.description.abstractOtherThe profitability of livestock activities can be significantly diminished by the effects of gastrointestinal parasitism. As well, it can also impact serious conditions in dogs and cats and, with a number of them also affecting the human population, due to their zoonotic potential. The demand for food without pesticide residues, safer working conditions and the increase cases of anthelmintic resistance opens a new pathway for sustainable alternatives in the control of helminthiases, such as essential oils. In this context, Caenorhabditis elegans is used to research phytoinputs with anthelmintic activity at different stages of development through toxicological evaluation in different strains of C. elegans. The aim of this study was to investigate the effects of different essential oils (EO) on the development of the life cycle of C. elegans; determine the LC50 or IC50 and LC90 or IC90 of essential oilswith anthelmintic activity; determine the resistance factor using different strains resistant to the main classes of C. elegans antiparasitics; and to propose an analytical line of tests capable of screening essential oils with possible anthelmintic activity. The following EOs were used: Cymbopogon flexuosus, Eugenia caryophyllus, Illicium verum, Mentha piperita, Mentha spicata, Pelargonium graveolens and Thymus vulgaris. All EOs were solubilized in DMSO. In vitro lethality tests were performed on adults of wild strain (N2) and strains resistant to ivermectin, albendazole and levamisole, egg hatchability and egg laying. I. verum EO showed better nematicidal activity in N2 adults. For oviposition inhibition, the C. flexuosus, E. caryophyllus, I. verum and T. vulgaris EOs showed a similar rate, while the P. graveolens EO did not result in activity. On the other hand, P. graveolens EO exhibited better inhibition of egg hatching. Adults ivermectin-resistant strain of C. elegans (DA1316) were shown to be susceptible to I. verum and T. vulgaris EOs, however they demonstrated cross-resistance to P. graveolens EO. Adults albendazole-resistant strain of C. elegans (CB3474) were shown to be susceptible to P. graveolens and T. vulgaris EOs, however they showed cross-resistance to I. verum EO. Adults levamisole-resistant strain of C. elegans (CB211) demonstrated cross-resistance to all tested EOs.en
dc.contributor.advisor1Scott, Fabio Barbour-
dc.contributor.advisor1IDhttps://orcid.org/0000-0003-1683-8724pt_BR
dc.contributor.advisor1Latteshttp://lattes.cnpq.br/1217253540572819pt_BR
dc.contributor.advisor-co1Magalhães, Viviane de Souza-
dc.contributor.advisor-co1IDhttps://orcid.org/0000-0002-8313-1246pt_BR
dc.contributor.advisor-co1Latteshttp://lattes.cnpq.br/1129995417777144pt_BR
dc.contributor.referee1Scott, Fabio Barbour-
dc.contributor.referee1IDhttps://orcid.org/0000-0003-1683-8724pt_BR
dc.contributor.referee1Latteshttp://lattes.cnpq.br/1217253540572819pt_BR
dc.contributor.referee2Klafke, Guilherme Marcondes-
dc.contributor.referee2IDhttps://orcid.org/0000-0002-5620-2483pt_BR
dc.contributor.referee2Latteshttp://lattes.cnpq.br/4799380226074807pt_BR
dc.contributor.referee3Monteiro, Caio Marcio de Oliveira-
dc.contributor.referee3IDhttps://orcid.org/0000-0001-5253-5451pt_BR
dc.contributor.referee3Latteshttp://lattes.cnpq.br/2496419306394657pt_BR
dc.creator.Latteshttp://lattes.cnpq.br/5935288138917748pt_BR
dc.publisher.countryBrasilpt_BR
dc.publisher.departmentInstituto de Veterináriapt_BR
dc.publisher.initialsUFRRJpt_BR
dc.publisher.programPrograma de Pós-Graduação em Ciências Veterináriaspt_BR
dc.relation.referencesABDELLATIEF, S. A.; BEHEIRY, R. R..; EL-MANDRAWY, S. A. M. Peppermint Essential Oil Alleviates Hyperglycemia Caused Bby Streptozotocin-Nicotinamide-Induced Type 2 Diabetes in Rats. Biomedicine & Pharmacotherapy, v. 95, p. 990-999, 2017. ABIDU-FIGUEIREDO, M.; CARVALHO-DE-SOUZA, B.; MAIO, F. G.; BARBOSA, C. G.; REINECKE , R. K. Comparação entre Técnicas Coproparasitológicas para a Contagem de Ovos de Namatóides Gastrointestinais de Búfalos. Revista Científica Eletrônica de Medicina Veterinária, n. 5, 2005. ABIEC - ASSOCIAÇÃO BRASILEIRA DAS INDÚSTRIAS EXPORTADORAS DE CARNE. Perfil da Pecuária no Brasil - Relatório Anual 2021. Disponível em: <abiec.com.br>. Acesso em: 04 dez. 2021. ABINPET - ASSOCIAÇÃO BRASILEIRA DA INDÚSTRIA DE PRODUTOS PARA ANIMAIS DE ESTIMAÇÃO. Mercado Pet Brasil 2021. Disponível em <http://www.abinpet.org.br/> Acesso em 04 dez. 2021. ADDAI, Z. R. Phytochemicals Screening and Evaluation of Antioxidants and Antibacterial Activities of Five Medicinal Plants. International Journal of Pharmacognosy and Phytochemical Research, v. 8, n. 3, p. 393-397, 2016. AHMAD, A.; VILJOENA, A. The In Vitro Antimicrobial Activity of Cymbopogon Essential Oil (Lemon Grass) and its Interaction With Silver Íons. Phytomedicine, v. 22, p. 657-665, 2015. ALAMGIR A. N. M. Therapeutic Use of Medicinal Plants and their Extracts. In: Progress in Drug Research. Rainsford KD (Ed.). Springer Nature, 2017. ALBUQUERQUE, Y. R. Atividade Anti-nematoides dos Óleos Essenciais de Petroselinum crispum, Ruta graveolens e Thymus vulgaris no Modelo Nematoide de Caenorhabditis elegans. 2019. 74 p. Dissertação (Mestrado em Genética Evolutiva e Biologia Molecular) - Universidade Federal de São Carlos, São Carlos, SP. ALTUN, Z. F. & HALL, D. H. Introduction. In: WormAtlas, 2009. ANDRÉS, M. F.; GONZÁLEZ-COLOMA, A.; MUÑOZ, R.; DE LA PEÑA, F.; JULIO, L. F.; BURILLO, J. Nematicidal Potential of Hydrolates from the Semi Industrial Vapor- Pressure Extraction of Spanish Aromatic Plants. Environmental Science and Pollution Research International, v. 25, n. 30, p. 29834-29840, 2018. ARAÚJO-FILHO, J. V.; RIBEIRO, W. L. C.; ANDRÉ, W. P. P.; CAVALCANTE, G. S.; RIOS, T. T.; SCHWINDEN, G. M.; ROCHA, L. O.D.; MACEDO, I. T. F.; MORAIS, S.M.; BEVILAQUA, C. M. L.; OLIVEIRA, L. M. B. Anthelmintic Activity of Eucalyptus citriodora Essential Oil and its Major Component, Citronellal, on Sheep Gastrointestinal Nematodes. Revista Brasileira de Parasitologia Veterinária, v. 28, n. 4, p. 644-651, 2019. BAKKALI, F.; AVERBECK, S. AVERBECK, D.; IDAOMAR, M. Biological Effects of Essential Oils – A Review. Food and Chemical Toxicology, v. 46, n. 2, p. 446-475, 2008. BANETH G., THAMSBORG, S. M.; OTRANTO, D.; GUILLOTX, J.; BLAGAX, R.; DEPLAZESK, P.; SOLANO-GALLEGO, L. Major Parasitic Zoonoses Associated with Dogs and Cats in Europe, Journal of Comparative Pathology, p. 1-21, 2015. BENELLI, G.; PAVELA, R.; CANALE, A.; CIANFAGLIONE, K.; CIASCHETTI, G.; CONTI, F.; NICOLETTI, M.; SENTHIL-NATHAN, S.; MEHLHORN, H.; MAGGI, F. Acute Larvicidal Toxicity of Five Essential oils (Pinus nigra, Hyssopus officinalis, Satureja montana, Aloysia citrodora and Pelargonium graveolens) Against the Filariasis Vector Culex quinquefasciatus: Synergistic and Antagonistic Effects. Parasitology International, v. 66, n. 2, p. 166-171, 2017. 48 BENENATI, G.; PENKOV, S.; MULLER-REICHERT, T.; ENTCHEV, E. V.; KURZCHALIA, T. V. Two Cytochrome P450s in Caenorhabditis elegans are Essential for the Organization of Eggshell, Correct Execution of Meiosis and the Polarization of Embryo. Mechanisms of Development, v. 126, p. 382-393, 2009. BHATTACHARYA, S. Cultivation of Essential Oils. Essential Oils in Food Preservation, Flavor and Safety. In: PREEDY, V. R. Essential Oils in Food Preservation, Flavor and Safety. Academic Press, 2016, p. 19-29. BIOESSÊNCIA. Laudo Cromatográfico: OE Hortelã Pimenta. Disponível em: <https://www.bioessencia.com.br/media/wysiwyg/bioessencia/cromatografia/BIO_LAUDO_ CROM_HORTELA_210802.pdf>. Acesso em: 06 jan. 2022. BIZIMENYERA, E. S.; GITHIORI, J. B.; ELOFF, J. N.; SWAN, G. E. In Vitro Activity of Peltophorum africanum Sond. (Fabaceae) Extracts on the Egg Hatching and Larval Development of the Parasitic Nematode Trichostrongylus Colubriformis. Veterinary Parasitology, v. 142, p. 336-343, 2006. BOGAN, J.; ARMOUR, J. Anthelmintics for Ruminants. International Journal for Parasitology, v. 17, n. 2, p. 483-491, 1987. BRENNER, S. The Genetics of Caenorhabditis elegans. Genetics, v. 77, n. 1, p. 71-94, 1974. BURNS, A. R.; LUCIANI, G. M.; MUSSO, G.; BAGG, R.; YEO, M.; ZHANG, Y.; RAJENDRAN, L.; GLAVIN, J.; HUNTER R.; REDMAN, E.; STASIUK, S.; SCHERTZBERG, M.; MCQUIBBAN, G. A.; CAFFREY, C. R.; CUTLER, S. R.; TYERS, M.; GIAEVER, G.; NISLOW, C.; FRASER, A. G.; MACRAE, C. A.; GILLEARD, J.; ROY, P. J. Caenorhabditis elegans is a Useful Model for Anthelmintic Discovery. Nature Communications, v. 6, n. 7485, p. 1-33, 2015. BÚSSOLA. Por que a Crise não Atinge o Mercado Pet, com Alta de 13,5% Durante a Pandemia? Revista Exame, 2021. Disponível em <https://exame.com/bussola/bussola-liveeconomia- animal-o-crescimento-do-mercado-pet-no-brasil/>. Acesso em 04 dez. 2021. BYERLY, L.; CASSADA, R. C.; RUSSEL, R. L. The life cycle of the nematode Caenorhabditis elegans. Developmental Biology, v. 51, n. 1, p. 23-33, 1976. CABONI, P.; SABA, M.; TOCCO, G.; CASU, L.; MURGIA, A.; MAXIA, A.; MENKISSOGLU-SPIROUDI, U.; NTALLI, N. Nematicidal Activity of Mint Aqueous Extracts against the Root-Knot Nematode Meloidogyne incognita. Journal of Agricultural and Food Chemistry, v. 61, n. 41, p. 9784-9788, 2013. CANÇADO, P. H. D.; CATTO, J. B.; SOARES, C. O.; MIRANDA, P. A. B.; SOUZA, T. F.; PIRANDA, E. M. Controle Parasitário de Bovinos de Corte em Sistemas de Integração. In: BUNGENSTAB, D. J. Sistemas de Integração Lavoura-pecuária-floresta: a Produção Sustentável. 2. ed. Brasília, DF: Embrapa Gado de Corte, 2012, p. 177-188. CARVALHO, J. R.; PRATISSOLI, D.; VIANNA, U. R.; HOLTZ, A. M. Análise de Probit Aplicada a Bioensaios com Insetos. Colatina: IFES, 2017. 102 p. CASSADA, R. C.; RUSSEL, R. L. The dauer Larva, a Post-embryonic Developmental Variant of the Nematode Caenorhabditis elegans. Developmental Biology, v. 46, ed. 2, p. 326-342, 1975. CASTILLO, R. M.; STASHENKO, E.; DUQUE, J. E. Insecticidal and Repellent Activity of Several Plant-Derived Essential Oils Against Aedes aegypti. Journal of the American Mosquito Control Association, v. 33, n. 1, p. 25-35, 2017. CEPEA - CENTRO DE ESTUDOS AVANÇADOS EM ECONOMIA APLICADA. PIB do Agronegócio Brasileiro. Disponível em: <www.cepea.esalq.usp.br>. Acesso em: 04 dez. 2021. CHAWEEBORISUIT, P.; SURIYONPLENGSAENG, C.; SUPHAMUNGMEE, W.; SOBHON, P.; MEEMON, K. Nematicidal Effect of Plumbagin on Caenorhabditis elegans: a 49 Model for Testing a Nematicidal Drug. Zeitschrift fur Naturforschung. C, Journal of Biosciences, v. 71, n. 5-6, p. 121-131, 2016. CHOUKSEY, D.; SHARMA, P.; PAWAR, R.S.; Biological Activities and Chemical Constituents of Illicium verum Hook Fruits (Chinese Star Anise). Der Pharmacia Sinica, v. 1, n. 3, p. 1-10, 2010. CNA - CONFEDERAÇÃO DA AGRICULTURA E PECUÁRIA DO BRASIL. Comunicado Técnico: PIB Brasil 2020 - Edição 06/2021. Disponível em <www.cnabrasil.org.br>. Acesso em 04 dez. 2021. DA SILVA RAMOS, R.; RODRIGUES, A. B. L.; FARIAS, A. L. F.; SIMÕES, R. C.; PINHEIRO, M. T.; FERREIRA, R. M. A.; COSTA BARBOSA, L. M.; PICANÇO SOUTO, R. N.; FERNANDES, J. B.; SANTOS, L. S.; DE ALMEIDA, S. S. M. S. Chemical Composition and In Vitro Antioxidant, Cytotoxic, Antimicrobial, and Larvicidal Activities of the Essential Oil of Mentha piperita L. (Lamiaceae). The Scientific World Journal, v. 2017, p. 1-8, 2017. DAMIANI, N.; GENDE, L. B.; BAILAC, P., MARCANGELI, J. A.; EGUARAS, M. J. Acaricidal and Insecticidal Activity of Essential Oils on Varroa destructor (Acari: Varroidae) and Apis mellifera (Hymenoptera: Apidae). Parasitology research, v. 106, n. 1, p. 145-152, 2009. DANTAS-TORRES, F. & OTRANTO, D. Dogs, Cats, Parasites, and Humans in Brazil: Opening the Black Box. Parasites & Vectors, v. 7, n. 22, p. 1-25, 2014. DAVISON, E. K. & BRIMBLE, M. A. Natural Product Derived Privileged Scaffolds in Drug Discovery. Current Opinion in Chemical Biology, v. 52, p. 1-8, 2019. DAVULURI, T.; CHENNURU, S.; PATHIPATI, M.; KROVVIDI, S.; RAO, G. S. In Vitro Anthelmintic Activity of Three Tropical Plant Extracts on Haemonchus contortus. Acta Parasitologica, v. 65, p. 11-18, 2019. DE ALMEIDA, M. A.; DOMINGUES, L. F.; ALMEIDA, G. N.; SIMAS, M. M.; BOTURA, M. B.; DA CRUZ, A. C.; DA SILVA, A. V.; MENEZES, T. P.; BATATINHA, M. J. Efeitos dos Extratos Aquosos de Folhas de Mentha piperita L. e de Chenopodium ambrosioides L. Sobre Cultivos de Larvas Infectantes de nematoides Gastrintestinais de Caprinos. Revista Brasileira de Parasitologia Veterinária, v. 16, n. 1, p. 57-59, 2007. DE LA TORRE RODRIGUEZ, Y. C.; MARTÍNEZ ESTRADA, F. R.; FLORES SUAREZ, A. E.; WAKSMAN DE TORRES, N.; SALAZAR ARANDA, R. Larvicidal and Cytotoxic Activities of Extracts from 11 Native Plants from Northeastern Mexico. Journal of Medical Entomology, v. 50, n. 2, p. 310-313, 2013. DE MENDONÇA, F. A. C.; DA SILVA, K. F. S.; DOS SANTOS, K. K.; RIBEIRO JÚNIO, K. A. L.; SANT'ANA, A. E. G. Activities of some Brazilian Plants Against Larvae of the Mosquito Aedes aegypti. Fitoterapia, v. 76, n, 7-8, p. 629-636, 2005. DE SOUZA CHAGAS, A. C.; DE SENA OLIVEIRA, M. C.; GIGLIOTI, R.; SANTANA, R. C. M.; BIZZO, H. R.; GAMA, P. E.; CHAVES, F. C. M. Efficacy of 11 Brazilian Essential Oils on Lethality of the Cattle Tick Rhipicephalus (Boophilus) microplus. Ticks and Tickborne Diseases, .v. 7, n. 3, p. 427-432, 2016. DE, M.; DE, A. K.; SEN, P.; BANERJEE, A. B. Antimicrobial properties of star anise (Illicium verum hook f). Phytotherapy Research., v. 16, p. 94-95, 2002. DELETRE, E.; CHANDRE, F.; WILLIAMS, L.; DUMÉNIL, C.; MENUT, C.; MARTIN, T. Electrophysiological and Behavioral Characterization of Bioactive Compounds of the Thymus vulgaris, Cymbopogon winterianus, Cuminum cyminum and Cinnamomum zeylanicum Essential Oils Against Anopheles gambiae and Prospects for their Use as Bednet Treatments. Parasites & Vectors, v. 8, n. 316, 2015. DELETRE, E.; MARTIN, T.; CAMPAGNE, P.; BOURGUET, D.; CADIN, A.; MENUT, C.; BONAFOS, R.; CHANDRE, F.; LAZZARI, CLAUDIO R. Repellent, Irritant and Toxic 50 Effects of 20 Plant Extracts on Adults of the Malaria Vector Anopheles gambiae Mosquito. PLOS ONE, 8(12), e82103, 2013. DENT, J. A.; SMITH, M. M.; VASSILATIS, D. K.; AVERY, L. The Genetics of Ivermectin Resistance in Caenorhabditis elegans. Proceedings of the National Academy of Sciences of the United States of America, v. 97, n. 6, p. 2674-2679, 2000. DESAM, N. R.; AL-RAJAB, A. J.; SHARMA, M.; MARY MOSES, M.; REDDY, G. R.; ALBRATTY, M. Chemical Constituents, In Vitro Antibacterial and Antifungal Activity of Mentha piperita L. (Peppermint) Essential Oils. Journal of King Saud University – Science, v. 31, p. 528-533, 2017. DOBRE, A. A.; GAGIU, V.; PETRU, N. Antimicrobial Activity of Essential Oils Against Food-borne Bacteria Evaluated by two Preliminary Methods. Romanian Biotechnological Letters, v. 16, p. 119-125, 2011a. DOBRE, A. A.; GAGIU, V.; PETRU, N. Preliminary Studies on the Antimicrobial Activity of Essential Oils Against Food-borne Bacteria and Toxigenic Fungi. Food Technology., v. 35, n. 2, p. 16-26, 2011b. DOS SANTOS, J.; DE ALMEIDA CHAVES, D. S.; DE SOUZA, M.; RIGER, C. J.; LAMBERT, M. M.; CAMPOS, D. R.; MOREIRA, L. O.; DOS SANTOS SIQUEIRA, R. C.; DE PAULO OSORIO, R.; BOYLAN, F.; CORREIA, T. R.; COUMENDOUROS, K.; CID, Y. P. In Vitro Activity of Essential Oils Against Adult and Immature Stages of Ctenocephalides felis felis. Parasitology, v. 147, n. 3, p. 340-347, 2020. DRISCOLL, M.; DEAN, E.; REILLY, E.; BERGHOLZ, E.; CHALFIE, M. Genetic and Molecular Analysis of a Caenorhabditis elegans Beta-tubulin that Conveys Benzimidazole Sensitivity. The Journal of Cell Biology, v. 109, n. 6, p. 2993-3003, 1989. EL AMRANI, S.; EL OUALI LALAMI, A.; EZ ZOUBI, Y.; EL MOUKHAFI, K.; BOUSLMATI, R.; LAIRINI, S. Evaluation of Antibacterial and Antioxidant Effects of Cinnamon and Clove Essential Oils from Madagascar. Materials Today: Proceedings, v. 13, p. 762-770, 2019. ELLSE, L. & WALL, R. The Use of Essential Oils in Veterinary Ectoparasite Control: a review. Medical and Veterinary Entomology, v. 28, n. 3, p. 233-243, 2014. ENG, J. K. L.; PRICHARD, R. K. A Comparison of Genetic Polymorphism in Populations of Onchocerca volvulus from Untreated- and Ivermectin-treated Patients. Molecular & Biochemical Parasitology, v. 142, n. 2, p. 193-202, 2005. ENNAIFER, M.; BOUZAIENE, T.; MESSAOUD, C.; HAMDI M. Phytochemicals, Antioxidant, Anti-acetyl-cholinesterase, and Antimicrobial Activities of Decoction and Infusion of Pelargonium graveolens. Natural Product Research, v. 34, n. 18, p. 2634-2638, 2020. EPE, C. & KAMINSKY, R. New Advancement in Anthelmintic Drugs in Veterinary Medicine. Trends in Parasitology, v. 29, n. 3, p. 129-134, 2013. FAIRWEATHER, I.; BORAY, J. Fasciolicides: Efficacy, Actions, Resistance and its Management. The Veterinary Journal, v. 158, n. 2, p. 81-112, 1999. FERREIRA, L. E.; BENINCASA, B. I..; FACHIN, A. L.; FRANÇA, S. C.; CONTINI, S.; CHAGAS, A.; BELEBONI, R. O. Thymus vulgaris L. Essential Oil and its Main Component Thymol: Anthelmintic Effects Against Haemonchus contortus from sheep. Veterinary Parasitology, v. 228, p. 70-76, 2016. FICHI, G.; FLAMINI, G.; GIOVANELLI, F.; OTRANTO, D.; PERRUCCI, S. Efficacy of an Essential oil of Eugenia caryophyllata Against Psoroptes cuniculi. Experimental Parasitology, v. 115, n. 2, p. 168-172, 2007. FITZPATRICK, J. L. Global Food Security: The Impact of Veterinary Parasites and Parasitologists. Veterinary Parasitology, v. 195, n. 3-4, p. 233-248, 2013. FUMAGALI, E.; GONÇALVES, R. A. C.; MACHADO, M. F. P. S.; VIDOTI, G. J.; 51 OLIVEIRA, A. J. B. Production of Secondary Metabolites in Plant Cell and Tissue Culture: the Example of the Genera Tabernaemontana and Aspidosperma. Brazilian Journal of Pharmacognosy, v. 18, p. 627–641, 2008. GAGMAN, H. A.; HIM, N.; AHMAD, H.; SULAIMAN, S. F.; ZAKARIA, R.; TERMIZI, F. In Vitro Efficacy of Aqueous and Methanol Extract of Cassia siamea Against the Motility of Caenorhabditis elegans. Tropical Life Sciences Research, v. 31, n. 3, p. 145-159, 2020. GAGMAN, H.; HIM, N.; ABUBAKAR, B.; AHMAD, H. Efficacy of Detarium Microcarpum Extracts and Synergistic Effect of Combine Extract and Ivermectin Against Caenorhabditis elegans. European Journal of Biological Research, v. 11, p. 189-202, 2021. GARCIA, S. N.; OSBUM, B. I.; CULLOR J. S. A One Health Perspective on Dairy Production and Dairy Food Safety. One Health, v. 7, 2019. GEARY, T. G. Ivermectin 20 Years on: Maturation of a Wonder Drug. Trends in Parasitology, v. 21, p. 530-532, 2005. GEARY, T. G.; SANGSTER, N. C.; THOMPSON, D. P. Frontiers in Anthelmintic Pharmacology. Veterinary Parasitology., v. 84, p. 275-295, 1999. GIARRATANA, F.; MUSCOLINO, D.; BENINATI, C.; GIUFFRIDA, A.; PANEBIANCO, A. Activity of Thymus vulgaris Essential Oil Against Anisakis larvae. Experimental Parasitology, v. 142, p. 7-10, 2014. GIATROPOULOS, A.; KIMBARIS, A.; MICHAELAKIS, Α.; PAPACHRISTOS, D. P.; POLISSIOU, M. G.; EMMANOUEL, N. Chemical Composition and Assessment of Larvicidal and Repellent Capacity of 14 Lamiaceae Essential Oils Against Aedes albopictus. Parasitology Research, v. 117, p. 1953-1964, 2018. GILLEARD, J. S. Haemonchus contortus as a Paradigm and Model to Study Anthelmintic Drug Resistance. Parasitology, v. 140, n. 12, p. 1506-1522, 2013. GILLEARD, J. S. Understanding Anthelmintic Resistance: The Need for Genomics and Genetics. International Journal for Parasitology, v. 36, n. 12, p. 1227-1239, 2006. GOLYNSKI, A. A. Controle de Helmintos de Frangos de Corte Utilizando as Plantas Mentha piperita, Carapa guianensis, Artemisia absinthium e Chenopodium ambrosioides. 2003. 54 p. Tese (Doutorado) - Universidade Federal Rural do Rio de Janeiro - Instituto de Veterinária. GOVINDARAJAN, M.; SIVAKUMAR, R ; RAJESWARI, M.;YOGALAKSHMI, K. Chemical Composition and Larvicidal Activity of Essential Oil from Mentha spicata (Linn.) Against Three Mosquito Species. Parasitology Research, v. 110, n. 5, p. 2023-2032, 2012. GRISI, L.; LEITE, R. C.; MARTINS, J. R. S.; BARROS, A. T. M.; ANDREOTTI, R.; CANÇADO, P. H. D.; LÉON, A. A. P.; PEREIRA, J. B.; VILLELA, H. S. Reassessment of the Potential Economic Impact of Cattle Parasites in Brazil. Brazilian Journal of Veterinary Parasitology, v. 23, n. 2, p. 150-156, 2014. GUCWA K.; MILEWSKI S.; DYMERSKI T.; SZWEDA P. Investigation of the Antifungal Activity and Mode of Action of Thymus vulgaris, Citrus limonum, Pelargonium graveolens, Cinnamomum cassia, Ocimum basilicum, and Eugenia caryophyllus Essential Oils. Molecules, v. 8, n. 23, p.1-18, 2018. HAN, X. & PARKER, T. L. Anti-inflammatory Activity of Clove (Eugenia caryophyllata) Essential Oil in Human Dermal Fibroblasts. Pharmaceutical Biology, v. 55, n. 1, p. 1619- 1622, 2017. HEIKAL H. M. Studies on the Occurrence, Identification and Control of House Dust Mites at Rural Houses of Shebin El-Kom Locality, Egypt. Pakistan Journal of Biological Sciences, v. 18, n. 4, p. 179-184, 2015. HELAL, M. A.; ABDEL-GAWAD, A. M.; KANDIL, O. M. KHALIFA, M. M. E.; CAVE, G. W. V.; MORRISON, A. A.; BARTLEY, D. J.; ELSHEIKHA, H. M. Nematicidal Effects of a Coriander Essential Oil and Five Pure Principles on the Infective Larvae of Major Ovine 52 Gastrointestinal Nematodes In Vitro. Pathogens, v. 9, n. 9, 2020. HODGKIN, J. Caenorhabditis elegans. In: BRENNER, S.; MILLER, J. H. Encyclopedia of Genetics. Academic Press, 2001. p. 251-256. HOLDEN-DYE, L. & WALKER, R.. J. Anthelmintic Drugs and Nematicides: Studies in Caenorhabditis elegans. In: WormBook, 2014. IBGE - INSTITUTO BRASILEIRO DE GEOGRAFIA E ESTATÍSTICA. PIB Varia -0,1% no 3º Trimestre de 2021. Disponível em <www.ibge.gov.br>. Acesso em 04 dez. 2021. INSTITUTO PET BRASIL. Anuário Pet 2020. Disponível em: <http://institutopetbrasil.com/>. Acesso em 04 dez. 2021. IRWING, P. J. Companion Animal Parasitology: a Clinical Perspective. International Journal for Parasitology, v. 32, n. 5, p. 581-593, 2002. KALAIVANI, K.; SENTHIL-NATHAN, S.; MURUGESAN, A. G. Biological Activity of Selected Lamiaceae and Zingiberaceae Plant Essential Oils Against the Dengue Vector Aedes aegypti L. (Diptera: Culicidae). Parasitology Research, v. 110, n. 3, p. 1261-1268, 2012. KALMOBÉ, J.; NDJONKA, D.; BOURSOU, D.; VILDINA, J. D.; LIEBAU, E. Phytochemical Analysis and In Vitro Anthelmintic Activity of Lophira lanceolata (Ochnaceae) on the Bovine Parasite Onchocerca ochengi and on Drug Resistant Strains of the Free-living Nematode Caenorhabditis elegans. BMC Complementary and Alternative Medicine, v. 17, n. 1, p. 404, 2017. KATIKI, L. M.; CHAGAS, A. C. S.; BIZZOC, H. R., FERREIRA, J. F. S.; AMARANTEE, A. F. T. Anthelmintic activity of Cymbopogon martinii, Cymbopogon schoenanthus and Mentha piperita Essential Oils Evaluated in Four Different In vitro Tests. Veterinary Parasitology, v. 183, p. 103-108, 2011. KEISER, J.; PANIC, G.; ADELFIO, R.; COWAN, N.; VARGAS, M.; SCANDALE, I. Evaluation of an FDA Approved Library Against Laboratory Models of Human Intestinal Nematode Infections. Parasites & Vectors, v. 9, n. 1, 2016. KHANAVI, M.; VATANDOOST, H.; KHOSRAVI DEHAGHI, N.; SANEI DEHKORDI, A.; SEDAGHAT, M. M.; HADJIAKHOONDI, A.; HADJIAKHOONDI, F. Larvicidal Activities of Some Iranian Native Plants Against the Main Malaria Vector, Anopheles stephensi. Acta medica Iranica, v. 51, n. 3, p. 141-147, 2013. KIM, J.; JANG, M.; SHIN, E.; KIM, J.; LEE, SI H.; PARK, C. G. Fumigant and Contact Toxicity of 22 Wooden Essential Oils and Their Major Components Against Drosophila suzukii (Diptera: Drosophilidae). Pesticide Biochemistry and Physiology, v. 133, p. 35-43, 2016. KIMBARIS, A. C.; GONZÁLEZ-COLOMA, A.; ANDRÉS, M. F.; VIDALI, V. P.; POLISSIOU, M. G.; SANTANA-MÉRIDAS, O. Biocidal Compounds from Mentha sp Essential Oils and their Structure-activity Relationships. Chemistry & Biodiversity, v. 14, n. 3, 2017. KÖHLER P. The Biochemical Basis of Anthelmintic Action and Resistance. International Journal for Parasitology, v. 31, n. 4, p. 336-345, 2001. KOLIOPOULOS, G.; PITAROKILI, D.; KIOULOS, E.; MICHAELAKIS, A.; TZAKOU, O. Chemical Composition and Larvicidal Evaluation of Mentha, Salvia, and Melissa Essential Oils Against the West Nile Virus Mosquito Culex pipiens. Parasitology Research, v. 107, n. 2, p. 327-335, 2010. KONG, J. O.; PARK, I. K.; CHOI, K. S.; SHIN, S. C.; AHN, Y. J. Nematicidal and Propagation Activities of Thyme Red and White Oil Compounds Toward Bursaphelenchus xylophilus (Nematoda: Parasitaphelenchidae). Journal of Nematology, v. 39, n. 3, p. 237- 242, 2007. KOTZE, A. C. & PRICHARD, R. K. Anthelmintic Resistance in Haemonchus contortus: History, Mechanisms and Diagnosis. In: GASSER, R. B. & VON SAMSON53 HIMMELSTJERNA, G. Advances in Parasitology. Academic Press, v. 93, 2016, p. 397- 428. KUMAR, P.; MISHRA, S.; MALIK, A.; SATYA, S. Repellent, Larvicidal and Pupicidal Properties of Essential Oils and their Formulations Against the Housefly, Musca domestica. Medical and Veterinary Entomology, v. 25, n. 3, p. 302-310, 2011. KUMAR, S.; WAHAB, N.; WARIKOO, R. Bioefficacy of Mentha piperita Essential Oil Against Dengue Fever Mosquito Aedes aegypti L. Asian Pacific Journal of Tropical Biomedicine, v. 1, n. 2, p. 85-88, 2011. KWA, M. S. G.; VEENSTRA, J. G.; ROOS, M. H. Benzimidazole Resistance in Haemonchus contortus is Correlated with a Conserved Mutation at Aminoacid 200 in β-tubulinIisotype 1. Molecular and Biochemical Parasitology, v. 63, n. 2, p. 299-303, 1994. LANUSSE, C. E.; ALVAREZ, L. A.; SALLOVITZ, J. M.; MOTTIER, M. L.; BRUNI, S. F. S. Antinematodal Drugs. In: RIVIERE, J. M.; PAPICH, M. G. Veterinary Pharmacology and Therapeutics. 9. ed: Wiley-Blackwell, 2003, p. 1053-1094. LAWLESS, J. The Encyclopedia of Essential Oils: The Complete Guide to the Use of Aromatic Oils in Aromatherapy, Herbalism, Health and Well-Being. HarperCollins Publishers, 2014, 256 p. LEE, S. Y., & KANG, K. Measuring the Effect of Chemicals on the Growth and Reproduction of Caenorhabditis elegans. Journal of visualized experiments: JoVE, v. 128, n. 56437, 2017. LEELA, N. K.; KHAN, R. M.; REDDY, P. P.; NIDIRY, E. S. J. Nematicidal Activity of Essential oil of Pelargonium graveolens Athe Root-knot Nematode Meloidogyne incognita. Nematologia Mediterranea, v. 20, n. 1, p. 57-58, 1992. LERNER, H. & BERG, C. The concept of health in One Health and some practical implications for research and education: what is One Health? Infection Ecology & Epidemiology, v. 5, p. 25300, 2015. LEWIS, J. A. & FLEMING, J. T. Basic Culture Methods. Methods in Cell Biology, [s. l.], v. 48, p. 3-29, 1995. LIMMA-NETTO, J. D.; SENA, A. C.; COPATTI, C. E. Essential Oils of Ocimum basilicum and Cymbopogon flexuosus in the Sedation, Anesthesia and Recovery of Tambacu (Piaractus mesopotamicus Male x Colossoma macropomum Female). Boletim do Instituto de Pesca, v. 42, p.727-733, 2016. LÓPEZ, H. S. S. & CAMBEROS, L. O. Farmacología Veterinaria. 3. ed.: McGraw-Hill, 2006. 1082 p. LUBEGA, G. W.; KLEIN, R. D.; GEARY, T. G.; PRICHARD, R. K. Haemonchus contortus: the Role of Two Beta-tubulin Gene Subfamilies in the Resistance to Benzimidazole Anthelmintics. Biochemical Pharmacology, v. 47, n. 9, p. 1705-1715, 1994. LUBEGA, G. W.; PRICHARD, R. K. Interaction of Benzimidazole Anthelmintics With Haemonchus contortus Tubulin: Binding Affinity and Anthelmintic Efficacy. Veterinary Pharmacology and Therapeutics, v. 73, n. 3, p. 203-213, 1991. MAKHAIK, M.; NAIK, S. N.; TEWARY, D. K. Evaluation of Anti-mosquito Properties of Essential Oils. Journal of Scientific & Industrial Research, v. 64, p. 129-133, 2005. MATOS. L. F.; BARBOSA, D. R. S.; LIMA, E. C.;DUTRA, K. A.; NAVARRO, D. M. A. F.; ALVES, J. L. R. A.; SILVA, G. N. Chemical Composition and Insecticidal Effect of Essential Oils from Illicium verum and Eugenia caryophyllus on Callosobruchus maculatus in Cowpea. Industrial Crops and Products, v. 145, n. 112088, 2020. MEDEROS, A. E.; RAMOS, Z.; BANCHERO, G. E. First Report of Monepantel Haemonchus contortus Resistance on Sheep Farms in Uruguay. Parasit Vectors, v. 7, n. 98, 2014. MIRANDA, R. A. de. Breve História da Agropecuária Brasileira. In: LANDAU, E. C.; 54 SILVA, G. A. da; MOURA, L.; HIRSCH, A.; GUIMARAES, D. P. (Ed.). Dinâmica da Produção Agropecuária e da Paisagem Natural no Brasil nas Últimas Décadas: Cenário Histórico, Divisão Política, Características Demográficas, Socioeconômicas e Ambientais. Brasília, DF: Embrapa, 2020. v. 1, p. 31-57. MOREY, R. A. & KHANDAGLE, A. J. Bioefficacy of Essential Oils of Medicinal Plants Against Housefly, Musca domestica L. Parasitology Research, v. 111, n. 4, p. 1799-1805, 2012. OKA, Y.; NACAR, S.; PUTIEVSKY, E.; RAVID, U.; YANIV, Z.; SPIEGEL, Y. Nematicidal Activity of Essential Oils and their Components Against the Root-knot Nematode. Phytopathology, v. 90, n. 7, p. 710-715, 2000 OLSON, S. K.; GREENAN, G.; DESAI, A.; MULLER-REICHERT, T.; OEGEMA, K. Hierarchical Assembly of the Eggshell and Permeability Barrier in C. elegans. Journal of Cell Biology, v. 198, 731-748, 2012. O'REILLY, L. P.; LUKE, C. J.; PERLMUTTER, D. H.; SILVERMAN, G. A.; PAK, S. C. C. elegans in High‐Throughput Drug Discovery. Advanced Drug Delivery Reviews, n. 69‐70, p. 247‐253, 2013. OZGUVEN, M. & TANSI, S. Drug Yield and Essential Oil of Thymus vulgaris L. as in Influenced by Ecological and Ontogenetical Variation. Turkian Journal of Agricultural and Forest, v. 22, p. 537-542, 1998. PAVELA, R. Larvicidal Effects of Various Euro-Asiatic Plants Against Culex quinquefasciatus Say Larvae (Diptera: Culicidae). Parasitology Research, v. 102, n. 3, p. 555-559, 2008. PAZINATO, R.; VOLPATO, A.; BALDISSERA, M. D.; SANTOS, R. C. V.; BARETTA, D.; VAUCHER, R. A.; GIONGO, J. L.; BOLIGON, A. A.; STEFANI, L. M.; SILVA, A. S. In vitro Effect of Seven Essential Oils on the Reproduction of the Cattle Tick Rhipicephalus microplus. Journal of Advanced Research, v. 7, n. 6, p. 1029-1034, 2016. PÉREZ LÓPEZ, L. A.; DE LA TORRE, Y. C.; CIRIO, A. T.; DE TORRES, N. W.; FLORES SUÁREZ, A. E.; ARANDA, R. S. Essential Oils from Zanthoxylum fagara Wild Lime, Ruta chalepensis L. and Thymus vulgaris L.: Composition and Activity Against Aedes aegypti Larvae. Pakistan Journal of Pharmaceutical Sciences, v. 28, n. 5, p. 1911-1915, 2015. PIÑA-VÁZQUEZ, D. M.; MAYORAL-PEÑA, Z.; GÓMEZ-SÁNCHEZ, M.; SALAZAR_x005f OLIVO, L. A.; ARELLANO-CARBAJAL, F. Anthelmintic Effect of Psidium guajava and Tagetes erecta on Wild-type and Levamisole-resistant Caenorhabditis elegans strains. Veterinary Pharmacology and Therapeutics, v. 202, p. 92-96, 2017. PITASAWAT, B.; CHOOCHOTE, W.; KANJANAPOTHI, D.; PANTHONG, A.; JITPAKDI, A.; CHAITONG, U. Screening for Larvicidal Activity of Ten Carminative Plants. Southwest Asian Journal of Tropical Medicine and Public Health, v. 29, n. 3, p. 660-662, 1998. PRICHARD, R. How do Anthelmintic Drugs Work? The Veterinary Journal, v. 154, n. 1, p. 5-7, 1997. PRICHARD, R. K. Genetic Variability Following Selection of Haemonchus contortus with Anthelmintics. Trends in Parasitology, v. 11, n. 9, p. 445-453, 2001. QUINARÍ. Óleo Essencial de Cravo. Disponível em: <https://www.quinari.com.br/loja/oleoessencial- de-cravo/>. Acesso em: 06 jan. 2022. QUINARÍ. Óleo Essencial de Tomilho. Disponível em: <https://www.quinari.com.br/loja/oleo-essencial-de-tomilho/>. Acesso em: 06 jan. 2022. RAMADAN, K. M. A.; ASHOUSH, I. S.; EL-BATAWY, O. I. Comparative Evaluation of Three Essential Oils as Functional Antioxidants and Natural Flavoring Agents in Ice Cream. World ApplIed Sciences Journal, v. 23, p. 159-166, 2013. RANG, H. P.; DALE, M. M.; RITTER, J. M.; MOORE, P. K. Farmacologia. 5. ed.: Elsevier, 55 2003. 904 p. RAPPLEYE, C. A.; PAREDEZ, A. R.; SMITH, C. W.; MCDONALD, K. L.; AROIAN, R. V. The Coronin-like Protein POD-1 is Required for Anterior-posterior Axis Formation and Cellular Architecture in the Nematode Caenorhabditis elegans. Genes Development, v. 13, p. 2838-2851, 1999. ROBERTSON, A. P.; BJORN, H. E.; MARTIN, R. J. Resistance to Levamisole Resolved at the Single-channel Level. The FASEB Journal, v. 13, n. 6, p. 749-760, 1999. ROBERTSON, J. L.; RUSSELl, R. M.; PREISLER, H. K.; SAVIN, N. E. Bioassays with Arthropods. CRC Press, Boca Raton, 2007, 199 p. ROMERO, M. C.; NAVARRO, M. C.; MARTÍN-SÁNCHEZ, J.; VALERO, A. Peppermint (Mentha piperita) and Albendazole Against Anisakiasis in an Animal Model. Tropical Medicine & International Health, v. 19, n. 12, p. 1430-1436, 2014. RSTUDIO TEAM. RStudio: Integrated Development Environment for R. RStudio Inc., Boston, MA. Disponível em: <http://www.rstudio.com, 2015>. Acesso em: 05 jan. 2022. RUVKUN, G. & HOBERT, O. The Taxonomy of Developmental Control in Caenorhabditis elegans. Science, v. 282, n. 5396, p. 2033-2041, 1998. SANGSTER, N. C.; COWLING, A.; WOODGATE, R. G.. Ten Events That Defined Anthelmintic Resistance Research. Trends in Parasitology, v. 34, n. 7, p. 553-563, 2018. SANGWAN, N. S.; FAROOQUI, A. H. A.; SHABIH, F. SANGWAN, R. S. Regulation of Essential Oil Production in Plants. Journal of Plant Growth Regulation, v. 34, p. 3-21, 2001. SCHIERENBERG, E. & JUNKERSDORF B. The Role of Eggshell and Underlying Vitelline Membrane for Normal Pattern Formation in the Early C. elegans Embryo. Rouxs Archives of Development Biology, v. 202, n. 1, p. 10-16, 1992. SEPÚLVEDA-CRESPO, D.; REGUERA, R. M.; ROJO-VÁZQUEZ, F.; BALAÑA-FOUCE, R.; MARTÍNEZ-VALLADARES, M. Drug Discovery Technologies: Caenorhabditis elegans as a Model for Anthelmintic Therapeutics. Medicinal Research Reviews, v. 40, n. 5, p. 1715- 1753, 2020. SHEN, B. A new Golden Age of Natural Products Drug Discovery. Cell, v. 163, n. 6, p. 1297-1300, 2015. SHOOP, W & SOLL, M. Macrocyclic Lactones in Antiparasitic Therapy. Cabi, 2002. 448p. SHOOP, W.; MROZIK, H.; FISHER, M. H. Structure and Activity of Avermectins and Milbemycins in Animal Health. Veterinary Parasitology, v. 59, n. 2, p. 139-156, 1995. SIMÕES, C. M. O.; SCHENKEL, E. P.; GOSMANN, G.; MELLO, J. C. P. MENTZ, L. A. Pharmacognosy: From Plant to Medicine. Porto Alegre/Florianópolis, ed. University/UFRGS/Ed.UFSC, 2001, 833 p. SINDAN. Sindicato Nacional da Indústria de Produtos para Saúde Animal. Coletiva de Imprensa - Radar Pet 2021 - Mercado Pet na Pandemia. Disponível em: <http://www.sindan.org.br>. Acesso em: 10 dez. 2021a. SINDAN. Sindicato Nacional da Indústria de Produtos para Saúde Animal. Mercado de Saúde Animal 2020. Disponível em: <http://www.sindan.org.br>. Acesso em: 10 dez. 2021b. SINGH, G.; MAURYA, S.; LAMPASONA, M. P.; CATALAN, C. Chemical Constituents, Antimicrobial Investigations and Antioxidative Potential of Volatile Oil and Acetone Extract of Star Anise Fruits. Journal of the Science of Food and Agriculture, v. 86, p. 111-121, 2006. SINGH, N. K.; JYOTI, ; VEMU, B.; NANDI, A.; SINGH, H.; KUMAR, R.; DUMKA, V. K. Acaricidal Activity of Cymbopogon winterianus, Vitex negundo and Withania somnifera Against Synthetic Pyrethroid Resistant Rhipicephalus (Boophilus) microplus. Parasitology Research, v. 113, n. 1, p. 341-350, 2014a. 56 SINGH, N. K.; JYOTI, ; VEMU, B.; NANDI, A.; SINGH, H.; KUMAR, R.; DUMKA, V. K. Laboratory Assessment of Acaricidal Activity of Cymbopogon winterianus,Vitex negundo and Withania somnifera Extracts Against Deltamethrin Resistant Hyalomma anatolicum. Experimental and Applied Acarology, v. 63, n. 3, p. 423-430, 2014b. SINTHUSIRI, J. & SOONWERA, M. Oviposition Deterrent and Ovicidal Activities of Seven Herbal Essential Oils Against Female Adults of Housefly, Musca domestica L. Parasitology Research, v. 113, n. 8, p. 3015-3022, 2014. SMITH, A. Screening for drug discovery: The leading question. Nature, v. 418, p. 453-455, 2002. STEIN, K. K. & GOLDEN, A. The C. elegans Eggshell. In: Wormbook, 2018. STIERNAGLE, T. Maintenance of C. elegans. In: Wormbook, 2006. STRATTON, C. F.; NEWMAN, D. J.; TAN, D. S. Cheminformatic Comparison of Approved Drugs from Natural Product versus Synthetic Origins. Bioorganic & Medicinal Chemistry Letters, v. 25, n. 21, p. 4802-4807, 2015. SULSTON, J. E.; SCHIERENBERG, E.; WHITE, J. G.; THOMSON, J. N. The Embryonic Cell Lineage of the Nematode Caenorhabditis elegans. Developmental Biology, v. 100, n. 1, p. 64-119, 1983. TALBERT, R. & WALL, R. Toxicity of Essential and Non-essential Oils Against the Chewing louse, Bovicola (Werneckiella) ocellatus. Research in Veterinary Science, v. 93, n. 2, p. 831-835, 2012. THOMFORD, N. E; SENTHEBANE, D. A; ROWE A.; MUNRO, D.; SEELE, P.; MAROYI, A.; DZOBO, K.. Natural Products for Drug Discovery in the 21st Century: Innovations for Novel Drug Discovery. International Journal of Molecular Sciences, v. 1, n. 96, 2018. VAN DEN BROM, R.; MOLL, L.; KAPPERT, C.; VELLEMA, P. Haemonchus contortus Resistance to Monepantel in Sheep. Veterinary Parasitology, v. 209, n. 3-4, p. 278-280, 2015. VERA, S. S.; ZAMBRANO, D. F.; MÉNDEZ-SANCHEZ, S. C.; RODRÍGUEZSANABRIA, F.; STASHENKO, E. E.; DUQUE L., JONNY E. Essential Oils with Insecticidal Activity Against Larvae of Aedes aegypti (Diptera: Culicidae). Parasitology Research, v. 113, n. 7, 2647-2654, 2014. VERCRUYSSE , J. & CLAEREBOUT, E. Treatment vs Non-treatment of Helminth Infections in Cattle: Defining the Threshold. Veterinary Parasitology, v. 98, p. 195-214, 2001. VIA AROMA. Laudo Cromatográfico: OE Anis Estrelado. Disponível em: <http://www.viaaroma.com.br/wp-content/uploads/2019/11/OE-ANIS-ESTRELADO-VIAAROMA. pdf>. Acesso em: 06 jan. 2022. VIA AROMA. Laudo Cromatográfico: OE Citronela. Disponível em: <http://www.viaaroma.com.br/wp-content/uploads/2019/11/OE-CITRONELA-VIAAROMA. pdf>. Acesso em: 06 jan. 2022. VIA AROMA. Laudo Cromatográfico: OE Gerânio. Disponível em: <http://www.viaaroma.com.br/wp-content/uploads/2019/11/OE-GERANIO-VIAAROMA. pdf>. Acesso em: 06 jan. 2022. VIA AROMA. Laudo Cromatográfico: OE Lemongrass. Disponível em: <http://www.viaaroma.com.br/wp-content/uploads/2019/11/OE-LEMONGRASS-VIAAROMA. pdf>. Acesso em: 06 jan. 2022. VIANA, F. A. B. Fundamentos da Terapêutica Veterinária. Universidade Federal de Minas Gerais, 2000. 222 p. VIEGAS JR., C.; BOLZANI, V. S.; BARREIRO, E. J. Os Produtos Naturais e a Química Medicinal Moderna. Química Nova, v. 29, n. 2, p. 326-337, 2006. VIVEIROS, C. T. Parasitoses Gastrintestinais em Bovinos na Ilha de S. Miguel, Açores – 57 Inquéritos de Exploração, Resultados Laboratoriais e Métodos de Controle. 2009. 104 p. Dissertação (Mestrado) - Universidade Técnica de Lisboa - Faculdade de Medicina Veterinária. WU, L.; HUO, X.; ZHOU, X.; ZHAO, D.; HE, W.; LIU, S.; LIU, H.; FENG, T.; WANG, C. Acaricidal Activity and Synergistic Effect of Thyme Oil Constituents against Carmine Spider Mite (Tetranychus cinnabarinus (Boisduval)). Molecules, v. 22, n. 11, 2017. ZUANAZZI, J. A. S. & MAYORGA, P. Fitoprodutos e Desenvolvimento Econômico. Química Nova, v. 33, n. 6, p. 1421-1428, 2010.pt_BR
dc.subject.cnpqMedicina Veterináriapt_BR
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